Christopher F. Chyba, Kevin P. Hand, and Thomas H. Chyba
Phys. Rev. Research 7, 013285 (2025) - Published 19 March, 2025
Experiments support a controversial proposal to generate electricity from our planet’s rotation by using a device that interacts with Earth’s magnetic field.
Yilong Ju, Shah Saad Alam, Jonathan Minoff, Fabio Anselmi, Han Pu, and Ankit Patel
Phys. Rev. Research 7, 013094 (2025) - Published 23 January, 2025
A convolutional neural network (CNN) is used to learn the ground state of a quantum spin Hamiltonian. Methodologies from information theory, group theory, and machine learning are employed to elucidate how a CNN captures the relevant physics of the system.
Thomas B. Mieling and Mario Hudelist
Phys. Rev. Research 7, 013162 (2025) - Published 13 February, 2025
A rigorous description of fiber optics in general stationary space-times is developed that accounts both for arbitrary fiber alignments and for gravity beyond the linearized regime. In addition to extending previous theoretical models of the Sagnac effect and the gravitational redshift, this work also predicts higher-order effects in the dynamics of the electromagnetic phase and polarization.
Dimitrios Mataragkas, Alexandros Vasilopoulos, Nikolaos G. Fytas, and Dong-Hee Kim
Phys. Rev. Research 7, 013214 (2025) - Published 27 February, 2025
Tricriticality occurs when first- and second-order phase transitions meet on the phase boundary, making it difficult to study using a single numerical approach. A proposed combined strategy offers insights that lay the groundwork for a better understanding of tricriticality in condensed-matter physics.
Michael F. Staddon and Carl D. Modes
Phys. Rev. Research 7, 013218 (2025) - Published 27 February, 2025
In the vertex model, an epithelial tissue is described as a tiling of polygons, each with elastic properties, and a solid-to-fluid phase transition can be exhibited. While most models enforce straight edges, it is shown that allowing curved edges, consistent with the Young-Laplace law, can significantly increase the fluidity of the tissue, allowing cells to rearrange more easily.
Kristian Blom, Dmitrii E. Makarov, and Aljaž Godec
Phys. Rev. Research 7, 013279 (2025) - Published 17 March, 2025
The Bennati-Dragulescu-Yakovenko asset-exchange model is studied in the presence of probabilistic cheaters that can falsely claim they are bankrupt. It is shown how the presence of such (hidden) cheaters can be inferred from the variance of the overall wealth distribution and that there exists a critical cheating probability at which the money owned by a small pool of cheaters undergoes a second-order discontinuity.
Yilin Chen, Haoxiang Chen, Nikolay Bogdanov, Kuang Yu, Ali Alavi, Enge Wang, and Ji Chen
Phys. Rev. Research 7, L012079 (2025) - Published 24 March, 2025
Advanced many-body calculations demonstrate the decisive role of electron correlation effects in single-photon emitters in hexagonal boron nitride, clarifying previously disputed defect properties and identifying new luminescent transitions.
Markus Ilchen et al.
Phys. Rev. Research 7, 011001 (2025) - Published 27 January, 2025
The ability to control polarization at free-electron lasers allows researchers to access and study previously unreachable states and processes in gaseous matter. This work provides a comprehensive roadmap of the current and future potential of these capabilities.
F. A. Palm, C. Repellin, N. Goldman, and F. Grusdt
Phys. Rev. Research 7, L012001 (2025) - Published 6 January, 2025
Gapless Majorana modes are expected to emerge at the edge of certain non-Abelian fractional quantum Hall states. A study of flux ladders with up to six legs finds bulk features of a bosonic Pfaffian state, whereas Majorana edge modes remain absent.
Siddhartha Patra, Sukhbinder Singh, and Román Orús
Phys. Rev. Research 7, L012002 (2025) - Published 6 January, 2025
A tensor network algorithm designed to simulate the dynamics of quantum many-body systems on arbitrary, including fluctuating, background geometries is presented. The algorithm is applied to classical spin glasses and quantum annealing problems on densely connected graphs with up to 1200 spins.
Samy Lakhal, Laurent Ponson, Michael Benzaquen, and Jean-Philippe Bouchaud
Phys. Rev. Research 7, L012003 (2025) - Published 6 January, 2025
A procedure to build multifractal random fields with log-normal cascade statistics is defined. When applied backward on fracture surfaces, the method reveals a singular organization of intermittency, ascribed to the dissipative nature of damage mechanisms ruling material failure.
B. Chapman-Oplopoiou, J. Walker, D. R. Hatch, T. Görler, and JET contributors
Phys. Rev. Research 7, L012004 (2025) - Published 8 January, 2025
The fundamental nature of electron temperature gradient driven turbulence in the edge of tokamak plasmas is explored. It is shown that turbulence due to both toroidal and slab resonances is responsible for the observed edge profile behavior in the edge of the Joint European Torus.
Rawan M. Nowier, Nilaj Chakrabarty, and Peter Jung
Phys. Rev. Research 7, L012005 (2025) - Published 8 January, 2025
We report that the binding rate of the searchers to random targets follows power-laws over a wide range of target densities with an exponent of 1.1 for low densities and an exponent of 1.5 for larger densities with the latter implying a linear dependence on the size of the targets and searchers which determines the transition between the two power-laws.
Zhongda Zeng, Giuliano Giudici, and Hannes Pichler
Phys. Rev. Research 7, L012006 (2025) - Published 9 January, 2025
Neutral atom analog quantum hardware excels in simulating large and complex systems, but its utility remains restricted by the specific class of problems that can be naturally encoded in such devices. This work extends the concept of Rydberg gadgets—clusters of atoms whose joint dynamics give rise to enhanced computational capabilities—beyond their original use in quantum optimization to the realm of many-body phases of quantum matter. This approach broadens the applicability of Rydberg-atom-based quantum simulators, enabling the realization of complex constrained models and the preparation of topological spin liquid states.
Henrik Andersen Sveinsson and Pinqiang Cao
Phys. Rev. Research 7, L012007 (2025) - Published 9 January, 2025
Methane hydrates are an order of magnitude more resistant to creep deformation than pure water ice. This study uses molecular dynamics simulations to show that hydrates are so creep resistant because they deform without damage to the interior of crystal grains. All mechanical deformation must therefore be accommodated on grain boundaries and grain junctions.
Felix Gerken, Ingo Runkel, Christoph Schweigert, and Thore Posske
Phys. Rev. Research 7, L012008 (2025) - Published 10 January, 2025
Product eigenstates in XXZ quantum Heisenberg models have a dual description in terms of graph orientations that fully classifies them. By this, product eigenstates ultimately appear as curled-up quantum spin helices and span a large degenerate energy eigenspace in strongly correlated quantum magnets whose degeneracy can be engineered using tools of graph theory to find optimal physical systems.
Zeki Zeybek, Peter Schmelcher, and Rick Mukherjee
Phys. Rev. Research 7, L012009 (2025) - Published 13 January, 2025
Using Rydberg atoms with tunable Van der Waals and dipolar interactions, a constrained model in one dimension with both local and nonlocal fluctuations is obtained. The combined effect of such competing processes leads to intrinsically quantum-ordered Rydberg crystals through the order-by-disorder mechanism.
Haijiao Ji and Noah F. Q. Yuan
Phys. Rev. Research 7, L012010 (2025) - Published 15 January, 2025
A three-band -orbital square lattice model is built for two-dimensional iron-based superconductors, based on which the magnetic field responses are studied. Under out-of-plane fields, highly anisotropic bound states are formed within fractional vortices; under in-plane fields, Ising spin-orbit coupling enhances the in-plane upper critical field.
Chuan Liu and Wen Wei Ho
Phys. Rev. Research 7, L012011 (2025) - Published 17 January, 2025
A geometric construction of quantum circuits with generalized space-time duality—the ability to exchange the concept of time with multiple space directions—is proposed. This yields models with entanglement dynamics, which are analytically solvable and display rich phenomenology.
David Wellnitz, Gustavo A. Domínguez-Castro, Thomas Bilitewski, Monika Aidelsburger, Ana Maria Rey, and Luis Santos
Phys. Rev. Research 7, L012012 (2025) - Published 17 January, 2025
This work investigates the quantum dynamics of interacting bosons in a ladder. Starting from an almost perfect charge-density wave, an effective topological model dynamically emerges and can be observed through the localization of defects.
Jiaji Zhang, Carlos L. Benavides-Riveros, and Lipeng Chen
Phys. Rev. Research 7, L012013 (2025) - Published 21 January, 2025
Neural quantum propagators, a universal neural network framework designed to solve driven-dissipative quantum dynamics by approximating quantum propagators rather than time-dependent wave functions or density matrices, are introduced. Neural quantum propagators simulate long-time dynamics, handle arbitrary initial quantum states, and adapt to various external fields.
Aviv Karnieli, Offek Tziperman, Charles Roques-Carmes, and Shanhui Fan
Phys. Rev. Research 7, L012014 (2025) - Published 21 January, 2025
One-dimensional emitter arrays are coupled to a driven nonlinear waveguide hosting parametric gain, enabling an effective interaction Hamiltonian with couplings that grow exponentially with the distance between emitters. In the limit of weak parametric gain, the resulting quantum Zeno dynamics allows for the globally controlled generation of many-body entangled decoherence-free dark states with long-range entanglement structure.
Kai-I Chu, Xiao-Cheng Lu, Kuan-Hsun Chiang, Yen-Hsiang Lin, Chii-Dong Chen, Ite A. Yu, Wen-Te Liao, and Yung-Fu Chen
Phys. Rev. Research 7, L012015 (2025) - Published 21 January, 2025
A large-scale superconducting-circuit-based quantum network requires a photonic quantum memory device to synchronize and distribute entanglement across its nodes. This work demonstrates the slowdown, storage, and retrieval of microwave photons using a single superconducting artificial atom, paving the way for the feasible implementation of photonic quantum memory in the microwave domain.
Xiang You and Yu-Ming He
Phys. Rev. Research 7, L012016 (2025) - Published 21 January, 2025
A novel asymmetric microcavity design for semiconductor quantum dots that simultaneously enhances single-photon purity and indistinguishability is introduced. By employing two nondegenerate polarized modes—one broadband for excitation and one narrowband for collection—this approach overcomes trade-offs in photon efficiency and spectral distortion, offering a path to high-performance, filtering-free single-photon sources.
Jian Leng, Fan Yang, and Xiang-Bin Wang
Phys. Rev. Research 7, L012017 (2025) - Published 21 January, 2025
This article presents a noise-tolerant method for Grover’s search that can significantly reduce the running time and exponentially improve the error threshold for Grover’s search under a mostly noisy environment.
Keir K. Rogers and Vivian Poulin
Phys. Rev. Research 7, L012018 (2025) - Published 22 January, 2025
A five-sigma discrepancy is found in inference of the clustering of matter between the eBOSS 1D Lyman-alpha forest 2019 analysis and the combination of cosmic microwave background, baryon acoustic oscillations, and supernovae data. It is argued that this discrepancy can be resolved either by modifications to the cosmological model or a significant change in the modeling of the intergalactic medium.
Carlos D. Alas, Liying Wu, Fabien Pinaud, and Christoph A. Haselwandter
Phys. Rev. Research 7, L012019 (2025) - Published 23 January, 2025
This study combines theoretical modeling and superresolution microscopy to present a physical model of the self-assembly of emerin nanodomains, illuminating their role in mechanotransduction, nuclear shape regulation, and defects linked to Emery-Dreifuss muscular dystrophy. The findings provide quantitative insights into nanoscale Turing pattern formation and identify molecular mechanisms underlying disease-associated emerin mutations.
Noah Schlossberger, Andrew P. Rotunno, Stephen P. Eckel, Eric B. Norrgard, Dixith Manchaiah, Nikunjkumar Prajapati, Alexandra B. Artusio-Glimpse, Samuel Berweger, Matthew T. Simons, Dangka Shylla, William J. Watterson, Charles Patrick, Adil Meraki, Rajavardhan Talashila, Amanda Younes, David S. La Mantia, and Christopher L. Holloway
Phys. Rev. Research 7, L012020 (2025) - Published 23 January, 2025
A traceable radiation temperature measurement is demonstrated using cold Rb atoms. The temperature is characterized by tracking population transfer between Rydberg states induced by blackbody radiation, yielding an absolute temperature uncertainty of 0.6%.
Tsuneya Yoshida, J. Lukas K. König, Lukas Rødland, Emil J. Bergholtz, and Marcus Stålhammar
Phys. Rev. Research 7, L012021 (2025) - Published 24 January, 2025
The topology of -fold exceptional points (EP), which goes beyond the existing periodic table of 38 symmetry classes, is elucidated. Specifically, by focusing on resultants of characteristic polynomials, the topology protecting generic (symmetry-protected) EP in 2 – 2 ( – 1) dimensions is systematically characterized. It is shown how to explicitly calculate the topological invariants in simple models of EP for arbitrary , as well as in an experimentally realized system.
Bradraj Pandey, Gonzalo Alvarez, Elbio Dagotto, and Rui-Xing Zhang
Phys. Rev. Research 7, L012022 (2025) - Published 27 January, 2025
Motivated by recent experimental advances in artificial Kitaev chains, this work proposes a minimalist architecture using coupled quantum dot arrays to realize crystalline-symmetry-protected Majorana modes.
Hironori Yamaguchi, Yu Tominaga, Takanori Kida, Koji Araki, Takashi Kawakami, Yoshiki Iwasaki, Kenta Kimura, and Masayuki Hagiwara
Phys. Rev. Research 7, L012023 (2025) - Published 30 January, 2025
The theoretical Kondo necklace model, which simplifies the Kondo lattice model by focusing on spin degrees of freedom, provides a valuable framework for understanding spin-related quantum phenomena. This work presents a realization of a spin-1/2 anisotropic Kondo necklace model using a complex of radical and Co spins and demonstrates that a magnetic field can decouple Kondo interactions.
A. Hosier, Dipti, S. A. Blundell, A. Lapierre, R. Silwal, G. Gwinner, J. N. Tan, A. Naing, J. D. Gillaspy, Y. Yang, P. Szypryt, G. O'Neil, H. Staiger, J. M. Dreiling, A. C. C. Villari, I. Angeli, Yu. Ralchenko, and E. Takacs
Phys. Rev. Research 7, L012024 (2025) - Published 3 February, 2025
A method is outlined for determining the absolute nuclear charge radius of high- elements using EUV spectroscopy of highly charged Na-like ions and precise atomic structure calculations, with osmium as a reference. The method reduces the uncertainty of the nuclear charge radius of Ir by a factor of 8 and enhances measurements across the Ir isotopic chain.
Ke Wang, Zhendong Zhang, Shu Nagata, Zhiqiang Wang, and K. Levin
Phys. Rev. Research 7, L012025 (2025) - Published 5 February, 2025
The strongly interacting Bose gas near unitarity has been of long-standing interest, with many arguing that its postquench dynamics should exhibit a form of universality. In the case of an extremely narrow Feshbach resonance, this paper shows how to experimentally characterize and theoretically understand the approach to unitarity, revealing an unexpected form of universality that corresponds to coherent oscillations among atoms and condensed and noncondensed molecules.
Daan Mulder, Pieter Rein ten Wolde, and Thomas E. Ouldridge
Phys. Rev. Research 7, L012026 (2025) - Published 5 February, 2025
The cost of a finite-time bit copy operation can be lowered using the bias present in the data, by copying the state of the data that is more likely with a higher accuracy. Furthermore, this strategy leads to a symmetry-breaking transition when copying unbiased data.
Noam Shlomo and Eugene Frumker
Phys. Rev. Research 7, L012027 (2025) - Published 5 February, 2025
laser-induced strong-field ionization has been harnessed for four-dimensional (three-dimensional space + one-dimensional time) tomographic imaging, particularly useful for probing far-from-equilibrium systems, with temporal resolution on the scale of tens of picoseconds and significantly enhanced spatial (volumetric) resolution compared to linear imaging modalities. This technique, characterized by unique intensity-resolution coupling and localization phenomena, is invaluable for applications in attosecond science, laser particle acceleration, inertial confinement fusion, x-ray sources, and cold chemistry.
D. Pfeiffer, M. Dietrich, P. Schach, G. Birkl, and E. Giese
Phys. Rev. Research 7, L012028 (2025) - Published 5 February, 2025
Atom interferometers achieve optimal performance when interference is limited to desired beam paths at the output port, mitigating noise from unwanted decremental paths. It is demonstrated how enhanced control over atomic trajectories can be implemented using a technique analogous to dichroic mirrors in optics, selectively reflecting only the desired interferometer arms.
Albert von Kenne, Sonja Schmelter, Holger Stark, and Markus Bär
Phys. Rev. Research 7, L012029 (2025) - Published 6 February, 2025
Hydrodynamic coordination of cilia is often modeled using steady Stokes equations. However, the microscopic flow generated by cilia exhibits a finite vorticity diffusion timescale. A simplified model for the coordination between elastic cilia in an unsteady flow reveals that this timescale significantly impacts coordination dynamics and offers estimates for the scales at which unsteadiness becomes relevant.
Qi-Jun Hong and Zi-Kui Liu
Phys. Rev. Research 7, L012030 (2025) - Published 7 February, 2025
A method for computing entropy across both solid and liquid phases utilizing a single molecular dynamics trajectory is introduced. This versatile method simplifies entropy computation, particularly configurational entropy, and enhances practical applications in computational thermodynamics.
Óscar Dueñas, David Peña, and Alberto Rodríguez
Phys. Rev. Research 7, L012031 (2025) - Published 10 February, 2025
This study unveils how a system of interacting bosons undergoes a fundamental change in its many-particle correlation dynamical response upon the emergence of many-body quantum chaos. Such a transition can be witnessed in ultracold atom setups at the level of experimentally accessible observables and timescales.
Mirko Residori, Suvendu Mandal, Axel Voigt, and Christina Kurzthaler
Phys. Rev. Research 7, L012032 (2025) - Published 12 February, 2025
Extensive finite-element simulations of laminar flow through porous media demonstrate a power-law scaling of the flow rate near the percolation transition, supporting prior analytical predictions from resistor network models. The results further show a power-law behavior of the kinetic energy at small energies, originating from cascades of viscous, self-similar eddies in stagnant zones.
K. Knakkergaard Nielsen
Phys. Rev. Research 7, L012033 (2025) - Published 12 February, 2025
This work demonstrates a pairing mechanism of dopants in a spin lattice, stemming from the dopants underlying high-temperature disorder. The effect is demonstrated in a mixed-dimensional model, where dopants travel along a two-leg ladder and with Ising spin interactions. The thermal spin disorder means that two initially adjacent dopants experience magnetic frustration as they depart from each other, whereby they are coerced to copropagate. The predictions are shown to be realistically testable in quantum simulation experiments.
Denis Dertli and Thomas Speck
Phys. Rev. Research 7, L012034 (2025) - Published 13 February, 2025
The numerical phase diagram for two-dimensional hard rectangles is presented for small to intermediate aspect ratios. For not too large aspect ratios, a tetratic phase intervenes between nematic and smectic as the continuation from square particles, and evidence is presented that the transition to the smectic phase is discontinuous.
Z. Sztranyovszky, W. Langbein, and E. A. Muljarov
Phys. Rev. Research 7, L012035 (2025) - Published 18 February, 2025
Exact eigenmodes of an open target system enable the accurate calculation of its response only in its interior volume. Here it is shown that using eigenmodes obtained by the resonant-state expansion, this volume is extended to the interior of the larger basis system used, embedding the target system. This allows treating perturbations outside the target system and calculating scattering cross-sections using the simple boundary conditions of a spherical basis system.
Xing-Liang Dong, Peng-Bo Li, Zongping Gong, and Franco Nori
Phys. Rev. Research 7, L012036 (2025) - Published 19 February, 2025
This work investigates dissipative light-matter coupling in structured waveguide QED, uncovering non-Hermitian effects such as level attraction, exceptional points, and pseudo-Hermitian symmetric phase transitions in atom-light bound states.
F. Azad, Adam J. McRoberts, Chris Hooley, and A. G. Green
Phys. Rev. Research 7, L012037 (2025) - Published 19 February, 2025
The field theory for the one-dimensional – model is recovered from a path integral over matrix product states by carefully taking the continuum limit—a generalization of the Haldane map. The topological terms and emergent SO(4) symmetry appear naturally; a constructive link between the microscopic states and the topological structure of the field theory is thus derived.
Sankalp Sharma, Jan Chwedeńczuk, and Tomasz Wasak
Phys. Rev. Research 7, L012038 (2025) - Published 20 February, 2025
A method to control atomic interactions by the coupling of the cavity photons with pairs of atoms is discussed. This mechanism allows the rapid generation of nonclassical states of matter useful for ultraprecise quantum sensing.
Yudai Miyai, Shin-ichiro Ideta, Masashi Arita, Kiyohisa Tanaka, Migaku Oda, Tohru Kurosawa, and Kenya Shimada
Phys. Rev. Research 7, L012039 (2025) - Published 24 February, 2025
The real and imaginary parts of the self-energy have been evaluated over a wide energy range using angle-resolved photoemission spectroscopy on a heavily overdoped single-layer cuprate superconductor (Bi, Pb)SrCuO in the strange metal state. At 300 K, the many-body interaction coupling parameter exceeds 1, indicating strong electron correlation. Upon cooling, the parameter further increases up to 1.8, which cannot be explained by electron-phonon interaction with a fixed Eliashberg function. This finding suggests the presence of an unexplored mechanism that enhances the coupling parameter at lower temperatures.
Dorje C. Brody and Lane P. Hughston
Phys. Rev. Research 7, L012040 (2025) - Published 24 February, 2025
The widely held view that decoherence represents a loss of information from a system to its environment is challenged. It is shown that decoherence is about information flowing into the system from the environment, not the other way around.
Eitan Y. Levine, Yang Wan, Sheroy Tata, Daria Raspopova, Eyal Kroupp, and Victor Malka
Phys. Rev. Research 7, L012041 (2025) - Published 25 February, 2025
Laser-plasma acceleration is a promising candidate for next-generation, compact particle accelerators, with accelerating fields orders of magnitude stronger than classical RF accelerators can support. To improve the beam quality, processes such as electron trapping from the plasma must be deeply understood and optimized. A mechanism describing the beam trapping dynamics in the commonly used shock front injection is uncovered using a recently developed diagnostic, while also demonstrating the possibility of a beam breakup due to a tilted shock and imaging it, a phenomenon with potential applications of its own.
Renyou Xu, Xiaobai Ning, Houyi Cheng, Yuxuan Yao, Zejun Ren, Shaojie Liu, Mingcong Dai, Yong Xu, Sai Li, Ao Du, Xiaojun Wu, Fengxia Hu, Baogen Shen, Jirong Sun, Hui Zhang, and Weisheng Zhao
Phys. Rev. Research 7, L012042 (2025) - Published 25 February, 2025
A study investigates the transport of orbital angular momentum in the ferromagnetic Ni layer and the orbit-to-charge conversion at the Ni/CuO interfaces on a femtosecond timescale, employing terahertz electric field detection.
Daniel A. Kiefer, Sylvain Mezil, and Claire Prada
Phys. Rev. Research 7, L012043 (2025) - Published 26 February, 2025
A single mode unfolds into multiple dispersion branches due to anisotropy. This effect is modeled and evidenced by measurements on a monocrystalline silicon wafer.
Teng Ma, Jing-Ning Zhang, Yuan-Sheng Wang, Hong-Yi Xie, and Man-Hong Yung
Phys. Rev. Research 7, L012044 (2025) - Published 26 February, 2025
In quantum systems, heat can spontaneously flow from system to system , even when the former has lower local temperatures, challenging conventional understanding of heat transfer. This study systematically interprets anomalous heat transfer (AHT) mechanisms through a unified energy-information equation and proves why two-body interactions alone are insufficient to generate AHT phenomena in multiqubit systems.
Chun-Xiao Liu, Sebastian Miles, Alberto Bordin, Sebastiaan L. D. ten Haaf, Grzegorz P. Mazur, A. Mert Bozkurt, and Michael Wimmer
Phys. Rev. Research 7, L012045 (2025) - Published 27 February, 2025
Majorana zero modes are the building blocks of topological quantum computing. This work proposes a method for scaling up a quantum-dot-based Kitaev chain with minimal footprint, providing guidance for obtaining Majorana zero modes with topological protection.
Dingxin Fan, Yuki Sakai, James R. Chelikowsky, Daniel Meuer, Alfred J. Weymouth, and Franz J. Giessibl
Phys. Rev. Research 7, L012046 (2025) - Published 27 February, 2025
A flickering phenomenon observed in scanning probe microscopy images of heavily boron-doped Si(111) 7 × 7 surfaces is explored. By integrating atomic force microscopy, scanning tunneling microscopy, and density functional theory calculations, the study uncovers how boron dopants create bistable adatom configurations and regenerate dangling bonds, leading to site-specific imaging anomalies.
Marec W. Heger and Daniel M. Reich
Phys. Rev. Research 7, L012047 (2025) - Published 28 February, 2025
The emergence of chirality in photoelectron circular dichroism is investigated via geometric chirality measures. It is shown that employing such measures for chiral potentials and wave functions may serve as an effective tool to track the emergence and predict the strength of chiral signatures.
Yuta Kuroda, Takeshi Kawasaki, and Kunimasa Miyazaki
Phys. Rev. Research 7, L012048 (2025) - Published 28 February, 2025
Chirality of the motions of active matter stabilizes the crystalline structures and can give rise to long-range translational order even in two dimensions.
Qian-Qian Hong, Daoyi Dong, Niels E. Henriksen, Franco Nori, Jun He, and Chuan-Cun Shu
Phys. Rev. Research 7, L012049 (2025) - Published 28 February, 2025
A study introduces a theoretical method called the multilevel pulse area theorem to control molecular rotations by analytically designing microwave pulse sequences with optimized strengths and phases, enabling precise generation of target rotational state superpositions in ultracold polar molecules. Numerical validation across 15 distinct configurations demonstrates that fine-tuned superpositions of the lowest 16 rotational states can achieve almost perfect molecular orientation.
Junyu He (何君鈺), Benjamin Pasquiou, Rodrigo González Escudero, Sheng Zhou (周晟), Mateusz Borkowski, and Florian Schreck
Phys. Rev. Research 7, L012050 (2025) - Published 4 March, 2025
This work demonstrates coherent three-photon excitation of the strontium clock transition using a Bose-Einstein condensate. It provides a method to outcouple a continuous atom laser beam and a fast excitation mechanism for quantum simulation using bosonic alkaline-earth-like atoms.
Lukas W. Kristensen, Michael Lisby, Mogens H. Jensen, and Mathias S. Heltberg
Phys. Rev. Research 7, L012051 (2025) - Published 3 March, 2025
In a simplified model, it is shown that oscillating stimulus promotes more efficient signal propagation across cells whose internal processes are subject to noise. A mathematical model is derived that shows how the propagation strongly depends on the frequency of the oscillation.
Han Yan (闫寒) and Rico Pohle
Phys. Rev. Research 7, L012052 (2025) - Published 4 March, 2025
It is demonstrated that the four-color Kitaev model hosts a classical ℤ spin liquid. A gauge theory framework is used to explicitly illustrate how “charge condensation” emerges in the effective Gauss’s law.
Jiahui Bao, Matthias Gohlke, Jeffrey G. Rau, and Nic Shannon
Phys. Rev. Research 7, L012053 (2025) - Published 4 March, 2025
The single-band Hubbard model at half-filling is considered to be the starting point for cuprate materials such as LaCuO or CaCuO. This work explores the limitations of its effective spin model by using numerical matrix product methods to explore magnetic excitations beyond spin-wave theory.
Mohammadhossein Firouznia and David Saintillan
Phys. Rev. Research 7, L012054 (2025) - Published 5 March, 2025
How nematic order, activity-driven flows, and interfacial deformations interact in a viscous drop with surface nematic activity is examined. Simulations reveal emergent behaviors, including braiding motions of topological defects, chaotic defect dynamics, active turbulence, spontaneous shape changes, and directed translation, offering insights into morphological dynamics in active fluid interfaces.
J. P. Farmer and G. Zevi Della Porta
Phys. Rev. Research 7, L012055 (2025) - Published 5 March, 2025
By spreading the witness charge in a resonantly driven plasma wakefield accelerator over several bunches, a higher total charge can be accelerated. This allows the luminosity of accelerators such as AWAKE at CERN to be increased.
Nir Gavrielov, Santiago Oviedo-Casado, and Alex Retzker
Phys. Rev. Research 7, L012056 (2025) - Published 6 March, 2025
Understanding the noise spectrum affecting superconducting qubits is crucial for achieving long gate times and high fidelities. This work introduces parametric spectroscopy, a protocol that merges parametric modulation of a qubit’s energy gap with dynamical decoupling sequences to enable accessing the high-energy spectrum of the noise with large frequency resolution, strong leakage resilience, and long coherence times.
Buğra Tüzemen, Maciej Marciniak, and Krzysztof Pawłowski
Phys. Rev. Research 7, L012057 (2025) - Published 10 March, 2025
A study of a one-dimensional dipolar Bose gas with strong short-range repulsion and long-range attraction shows that the interplay of these interactions suppresses quantum depletion and restores the applicability of the Bogoliubov–de Gennes (BdG) method. The research compares BdG predictions with exact many-body calculations and demonstrates that the condensate fraction remains significant even in regimes exhibiting strong antibunching.
Jia-Bin You, Jian Feng Kong, Davit Aghamalyan, Wai-Keong Mok, Kian Hwee Lim, Jun Ye, Ching Eng Png, and Francisco J. García-Vidal
Phys. Rev. Research 7, L012058 (2025) - Published 10 March, 2025
Entanglement generation between atoms chirally coupled to finite one-dimensional spin chains acting as spin cavities is investigated. By employing a variational matrix product state algorithm, the work reveals parity effects in entanglement dynamics, demonstrates the influence of classical driving fields, and explores the role of disorder in optimizing entanglement generation, showing that controlled disorder can significantly enhance entanglement efficiency.
Shulin Ding, Bing He, Yucheng Wu, Yong Hu, Han Wang, Wenjie Wan, Min Xiao, and Xiaoshun Jiang
Phys. Rev. Research 7, L012059 (2025) - Published 10 March, 2025
A correspondence is established between the Bloch-band structure and the coupled sideband dynamics of optomechanical oscillations. The results offer simple but effective guidance for the optomechanical generation of optical frequency combs with broadband and low repetition rates.
Xiao-Dong Lin and Long Zhang
Phys. Rev. Research 7, L012060 (2025) - Published 10 March, 2025
A unified quench-dynamics framework is established to measure line-gap winding numbers, point-gap braiding degrees, and non-Bloch topological invariants in odd-dimensional systems with sublattice or chiral symmetry, with a proposed cold-atom implementation demonstrating experimental feasibility.
Csegő Balázs Kolok, Gergely Ódor, Dániel Keliger, and Márton Karsai
Phys. Rev. Research 7, L012061 (2025) - Published 10 March, 2025
Epidemic spreading and adaptive self-protection behaviors are inherently coupled processes. Epidemic dynamics is studied in scale-free networks with local awareness behavior adopted by only susceptible, only infected, or all nodes. It is found that fewer potentially aware nodes reduce the epidemic size more effectively compared to systems where all nodes can be aware; a phenomenon reminiscent of Braess’s paradox.
A. J. Howard, M. Britton, Z. L. Streeter, C. Cheng, R. R. Lucchese, C. W. McCurdy, and P. H. Bucksbaum
Phys. Rev. Research 7, L012062 (2025) - Published 10 March, 2025
Semiheavy water (HOD) is one of the simplest molecules in which the bonds are labeled by isotope. It is demonstrated that a pair of intense few-femtosecond infrared laser pulses can be used to selectively tunnel ionize along one of the two bonds.
Pieter J. van Essen, Brian de Keijzer, Tanya van Horen, Eduardo B. Molinero, Álvaro Jiménez Galán, Rui. E. F. Silva, and Peter M. Kraus
Phys. Rev. Research 7, L012063 (2025) - Published 11 March, 2025
This work proposes spatial polarization gating, that is, using a spatially varying ellipticity of a driving laser pulse to reduce the spatial profile of high-harmonic emission below the diffraction limit and hence increase spatial resolution. It is shown experimentally and by numerical simulations that the method is generally applicable and provides a step toward all-optical femtosecond-to-attosecond label-free superresolution imaging.
Jinye Wei, Jiahao Huang, and Chaohong Lee
Phys. Rev. Research 7, L012064 (2025) - Published 12 March, 2025
An adaptive Bayesian quantum estimation for atomic gravimetry is developed, which can achieve enhanced sensitivity while maintaining high dynamic range and robustness. This approach can be widely used for various interferometry-based quantum sensors.
Roberto Menta, Francesco Cioni, Riccardo Aiudi, Marco Polini, and Vittorio Giovannetti
Phys. Rev. Research 7, L012065 (2025) - Published 12 March, 2025
A globally driven superconducting quantum computing architecture is introduced that uses the always-on interqubit longitudinal ZZ coupling as a resource. By exploiting this interaction in the strong-coupling (i.e., blockade) regime, together with suitably engineered drive pulses, the architecture enables universal quantum computation without individual qubit control.
Umesh Kumar, Corey Melnick, and Gabriel Kotliar
Phys. Rev. Research 7, L012066 (2025) - Published 12 March, 2025
The role of Hund’s coupling in superconducting nickelates remains an open question. This study demonstrates that Hund’s coupling is responsible for the softening of excitations in doped nickelates, providing a theoretical explanation for the recent resonant inelastic x-ray scattering experiment. The findings highlight the competition between Hund’s coupling and crystal-field splitting, offering new insights into the electronic structure and superconductivity of these materials.
Y.-M. Robin Hu, Elena A. Ostrovskaya, and Eliezer Estrecho
Phys. Rev. Research 7, L012067 (2025) - Published 12 March, 2025
Wave-packet dynamics in two-dimensional non-Hermitian systems using a first-order perturbation theory are investigated. The results reveal that two different non-Hermitian generalizations of the quantum geometric tensor play a significant role in the accurate description of the dynamics.
Po-Chen Kuo, Shen-Liang Yang, Neill Lambert, Jhen-Dong Lin, Yi-Te Huang, Franco Nori, and Yueh-Nan Chen
Phys. Rev. Research 7, L012068 (2025) - Published 12 March, 2025
A study examines how non-Markovian environments modify the Liouvillian skin effect, revealing a “thick skin effect” where skin modes broaden into the bulk. The work identifies that cross-site quantum coherence leads to coherence delocalization and oscillatory relaxation dynamics with linear system-size scaling.
He-bin Zhang, Yuanjiang Tang, and Yong-Chun Liu
Phys. Rev. Research 7, L012069 (2025) - Published 12 March, 2025
A novel quantum optical phenomenon termed nuclear spin induced transparency (NSIT) derived from the nuclear spin coherence of noble-gas atoms is predicted. Thanks to ultralong lifetimes of nuclear spins, the NSIT effect achieves an ultranarrow transparency window, reaching sub-mHz range, far smaller than the conventional electromagnetically induced transparency window.
Jing Zhao, Guangru Bai, Qian Zhang, Bin Zhang, Wenkai Tao, Qianyu Qiu, Hongbin Lei, Yue Lang, Jinlei Liu, Xiaowei Wang, and Zengxiu Zhao
Phys. Rev. Research 7, L012070 (2025) - Published 14 March, 2025
A theoretical framework is developed to investigate the strong-field-induced electronic and vibronic dynamics governing ionic radiation and absorption dynamics. By resolving the contributions of different electronic states and the effects of electronic-vibrational coupling in x-ray absorption spectra, this study helps to address the debate on nitrogen air lasing.
Aida Mashaal, Lucio Stefan, Andrea Ranfagni, Letizia Catalini, Ilia Chernobrovkin, Thibault Capelle, Eric C. Langman, and Albert Schliesser
Phys. Rev. Research 7, L012071 (2025) - Published 17 March, 2025
A study showcases parametric squeezing in soft-clamped silicon nitride membrane resonators, utilizing both piezoelectric and capacitive actuation. Through feedback stabilization, the research surpasses the parametric instability limit, with capacitive actuation achieving a noise squeezing of 21 dB.
Zijian Lyu, Fengxiao Sun, Yiqi Fang, Qiongyi He, and Yunquan Liu
Phys. Rev. Research 7, L012072 (2025) - Published 18 March, 2025
How quantum light fields influence the statistical distribution of tunneling electrons in above-threshold ionization is explored. Using the quantum strong-field approximation, it is demonstrated that bunched photon statistics, such as those in bright squeezed vacuum, shape electron emission dynamics, leading to statistical modifications beyond classical expectations.
Benjamin K. Chang, Iurii Timrov, Jinsoo Park, Jin-Jian Zhou, Nicola Marzari, and Marco Bernardi
Phys. Rev. Research 7, L012073 (2025) - Published 18 March, 2025
Accurate parameter-free calculations of correlated electron-phonon (-ph) coupling and polaronic hole spectral functions in undoped lanthanum cuprate is demonstrated. The results capture features not explained by existing models and suggest that the universal strong -ph coupling found experimentally in doped lanthanum cuprates also exists in the parent compound.
Davide Cugini, Davide Nigro, Mattia Bruno, and Dario Gerace
Phys. Rev. Research 7, L012074 (2025) - Published 19 March, 2025
The infidelity of a quantum state via linear adiabatic preparation decays exponentially with computational time. In this work the exponential characteristic time is derived analytically, enabling optimal Hamiltonian design, and validated with numerical experiments on prototypical spin models.
David Christian Ohnmacht, Juan Carlos Cuevas, Wolfgang Belzig, Rosa López, Jong Soo Lim, and Kun Woo Kim
Phys. Rev. Research 7, L012075 (2025) - Published 20 March, 2025
The thermodynamic uncertainty relation is shown to be largely violated in highly transmissive superconducting contacts. This violation originates from the coexistence of tunneling processes involving different numbers of transmitted charges, namely quasiparticle tunneling and (multiple) Andreev reflections.
R. A. M. Ligthart, M. A. J. Herrera, A. C. H. Visser, A. Vlasblom, D. Bercioux, and I. Swart
Phys. Rev. Research 7, 012076 (2025) - Published 20 March, 2025
This article presents an experimental technique to elucidate the location of Wannier centers - as a proxy for the topological properties - in artificial lattices made of Cs/InAs(111)A by integrating the density of states. The results are further corroborated with tight-binding simulations.
Zhiyao Guan, Tian Cui, and Da Li
Phys. Rev. Research 7, L012077 (2025) - Published 21 March, 2025
This paper reports on the discovery of LiRh, the first high-pressure electride superconductor with a superconducting transition temperature () surpassing 100 K. The high value of stems from its unique electronic structure, featuring strong hybridization between nonnuclear attractors and atomic orbitals near the Fermi level.
Aishani Ghosal and Jason R. Green
Phys. Rev. Research 7, L012078 (2025) - Published 24 March, 2025
Motivated by recent experimental advances in active materials, this work reparametrizes the speed limit set by the Fisher information to infer dissipation rates from directly observable quantities without an analytically solvable model or full time-dependent probability distribution.
Yilin Chen, Haoxiang Chen, Nikolay Bogdanov, Kuang Yu, Ali Alavi, Enge Wang, and Ji Chen
Phys. Rev. Research 7, L012079 (2025) - Published 24 March, 2025
Advanced many-body calculations demonstrate the decisive role of electron correlation effects in single-photon emitters in hexagonal boron nitride, clarifying previously disputed defect properties and identifying new luminescent transitions.
Y. Ihara, M. Shimohashi, and M. Kriener
Phys. Rev. Research 7, L012080 (2025) - Published 24 March, 2025
The appearance of mixed valences of In in GeInTe is probed by nuclear spin-spin relaxation rate measurements. The observed drastic shortening of is associated with the interaction between In and In, which induces and enhances the superconductivity in this material.
Christian Beck and Constantino Tsallis
Phys. Rev. Research 7, L012081 (2025) - Published 25 March, 2025
By introducing a generalized statistical mechanics description involving temperature fluctuations, it is shown how anomalous velocity distributions arise in ion-trap experiments involving slow quantum-tunneling chemical reactions. The density dependence of the entropic index , describing the shape of the distributions and the strength of temperature fluctuations, is analytically calculated and compared with experimental data.
F. Herrmann, W. Zhang, M. Schulz, D. V. Chicharro, A. Dorn, M. Grieser, F. Grussie, H. Kreckel, O. Novotny, F. Trost, A. Wolf, T. Pfeifer, C. D. Schröter, and R. Moshammer
Phys. Rev. Research 7, L012082 (2025) - Published 25 March, 2025
In detachment with simultaneous target ionization in anion-atom collisions, an electron can be ejected from each collision partner through two different channels: either by two independent interactions of each electron with the core of the other respective collision partner or by a single mutual interaction between the two electrons. Surprisingly, the latter is dominant.
Ying Li, Ram Seshadri, Stephen D. Wilson, Anthony K. Cheetham, and Roser Valentí
Phys. Rev. Research 7, L012083 (2025) - Published 28 March, 2025
This work uncovers the origin for failures of the well-established Kotani model describing temperature-dependent magnetism in spin-orbit-coupled transition metal compounds and proposes a generalization of the model.
Chae-Yeun Park and Michael J. Kastoryano
Phys. Rev. Research 7, 013001 (2025) - Published 2 January, 2025
Yu-Jue Xie, Man-Na Zhang, Rui Wang, Li-Feng Wang, and Qing-An Huang
Phys. Rev. Research 7, 013002 (2025) - Published 2 January, 2025
Siyuan Chen, Wei Xie, Ping Xu, and Kun Wang
Phys. Rev. Research 7, 013003 (2025) - Published 2 January, 2025
Yuan-Nan Young, Vicente Gomez Herrera, Huan Zhang, Reza Farhadifar, and Michael J. Shelley
Phys. Rev. Research 7, 013004 (2025) - Published 3 January, 2025
Florian Kraushofer, Alexandra M. Imre, Giada Franceschi, Tilman Kißlinger, Erik Rheinfrank, Michael Schmid, Ulrike Diebold, Lutz Hammer, and Michele Riva
Phys. Rev. Research 7, 013005 (2025) - Published 3 January, 2025
Michael Schmid, Florian Kraushofer, Alexandra M. Imre, Tilman Kißlinger, Lutz Hammer, Ulrike Diebold, and Michele Riva
Phys. Rev. Research 7, 013006 (2025) - Published 3 January, 2025
Fan Yang, Furong Wang, Xusheng Xu, Pan Gao, Tao Xin, ShiJie Wei, and Guilu Long
Phys. Rev. Research 7, 013007 (2025) - Published 3 January, 2025
J. M. Sánchez Velázquez, A. Steiner, R. Freund, M. Guevara-Bertsch, Ch. D. Marciniak, T. Monz, and A. Bermudez
Phys. Rev. Research 7, 013008 (2025) - Published 3 January, 2025
V. Gopalaswamy, A. Lees, R. Ejaz, C. A. Thomas, T. J. B. Collins, K. S. Anderson, W. Ebmeyer, and R. Betti
Phys. Rev. Research 7, 013009 (2025) - Published 3 January, 2025
Guillaume Le Treut, Sarah Ancheta, Greg Huber, Henri Orland, and David Yllanes
Phys. Rev. Research 7, 013010 (2025) - Published 6 January, 2025
E. Billaud, L. Balembois, J. Travesedo, M. Le Dantec, M. Rančić, E. Albertinale, R. Truong, S. Bertaina, T. Chanelière, P. Goldner, D. Estève, D. Vion, E. Flurin, and P. Bertet
Phys. Rev. Research 7, 013011 (2025) - Published 6 January, 2025
Tianhong Wang, Finn Buldt, Pascal Bassène, Saad Bin Ali Reza, Edwin Fohtung, Thomas A. Searles, Chiu Tai Law, and Moussa N'Gom
Phys. Rev. Research 7, 013012 (2025) - Published 6 January, 2025
Shaoliang Zhang, Chenwei Lv, and Qi Zhou
Phys. Rev. Research 7, 013013 (2025) - Published 6 January, 2025
Christian Z. Pratt, Kyle J. Ray, and James P. Crutchfield
Phys. Rev. Research 7, 013014 (2025) - Published 6 January, 2025
Yongfeng Zhao
Phys. Rev. Research 7, 013015 (2025) - Published 6 January, 2025
Victor Montenegro
Phys. Rev. Research 7, 013016 (2025) - Published 6 January, 2025
Matteo D'Alessandro and Piet Van Mieghem
Phys. Rev. Research 7, 013017 (2025) - Published 6 January, 2025
Abdolreza Pasharavesh and Michal Bajcsy
Phys. Rev. Research 7, 013018 (2025) - Published 6 January, 2025
Héctor M. Castro-Beltrán and Ricardo Román-Ancheyta
Phys. Rev. Research 7, 013019 (2025) - Published 6 January, 2025
Jorge Tabanera-Bravo and Aljaž Godec
Phys. Rev. Research 7, 013020 (2025) - Published 7 January, 2025
Lorenzo Pizzino, Hepeng Yao, and Thierry Giamarchi
Phys. Rev. Research 7, 013021 (2025) - Published 7 January, 2025
Ke-Ji Chen, Wei Yi, and Fan Wu
Phys. Rev. Research 7, 013022 (2025) - Published 7 January, 2025
Han Gao, Xuejin Zhang, Chao Ding, Mingzheng Wang, Juan Wang, Bo Yang, and Mingwen Zhao
Phys. Rev. Research 7, 013023 (2025) - Published 7 January, 2025
Xiaoming Liang
Phys. Rev. Research 7, 013024 (2025) - Published 7 January, 2025
Paulina Majchrzak, Charlotte Sanders, Yu Zhang, Andrii Kuibarov, Oleksandr Suvorov, Emma Springate, Iryna Kovalchuk, Saicharan Aswartham, Grigory Shipunov, Bernd Büchner, Alexander Yaresko, Sergey Borisenko, and Philip Hofmann
Phys. Rev. Research 7, 013025 (2025) - Published 7 January, 2025
Saeid Asgarnezhad-Zorgabad, Jeremy J. Baumberg, and Ortwin Hess
Phys. Rev. Research 7, 013026 (2025) - Published 7 January, 2025
Hong-Tao Zheng, Xiang-Fa Zhou, Guang-Can Guo, and Zheng-Wei Zhou
Phys. Rev. Research 7, 013027 (2025) - Published 7 January, 2025
P. Yanes-Thomas, R. Gutiérrez-Jáuregui, P. Barberis-Blostein, D. Sahagún-Sánchez, R. Jáuregui, and A. Kunold
Phys. Rev. Research 7, 013028 (2025) - Published 8 January, 2025
Boris M. Varbanov, Marc Serra-Peralta, David Byfield, and Barbara M. Terhal
Phys. Rev. Research 7, 013029 (2025) - Published 8 January, 2025
Xiangjin Kong, Yue Chang, Lida Zhang, Jianmin Yuan, and Yu-Gang Ma
Phys. Rev. Research 7, 013030 (2025) - Published 8 January, 2025
Xu Yan, Chengdong He, Kai Wen, Zejian Ren, Preston Tsz Fung Wong, Elnur Hajiyev, and Gyu-Boong Jo
Phys. Rev. Research 7, 013031 (2025) - Published 8 January, 2025
Rinki Imada and Tomohiro Tachi
Phys. Rev. Research 7, 013032 (2025) - Published 8 January, 2025
Ofir Tal-Friedman, Tommer D. Keidar, Shlomi Reuveni, and Yael Roichman
Phys. Rev. Research 7, 013033 (2025) - Published 8 January, 2025
I. N. Ashkarin, S. Lepoutre, P. Pillet, I. I. Beterov, I. I. Ryabtsev, and P. Cheinet
Phys. Rev. Research 7, 013034 (2025) - Published 10 January, 2025
Don Arai, Ken N. Okada, Yuichiro Nakano, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 7, 013035 (2025) - Published 9 January, 2025
Xiangyu Li, Xiaolong Yin, Nathan Wiebe, Jaehun Chun, Gregory K. Schenter, Margaret S. Cheung, and Johannes Mülmenstädt
Phys. Rev. Research 7, 013036 (2025) - Published 10 January, 2025
Michela Esposito, Nicole Schieber, Alessandro Olivo, Yannick Schwab, and Marco Endrizzi
Phys. Rev. Research 7, 013037 (2025) - Published 10 January, 2025
Tong Jiang, Bryan O'Gorman, Ankit Mahajan, and Joonho Lee
Phys. Rev. Research 7, 013038 (2025) - Published 10 January, 2025
Doron Grossman and Jean-Francois Joanny
Phys. Rev. Research 7, 013039 (2025) - Published 10 January, 2025
Jon Nelson, Gregory Bentsen, Steven T. Flammia, and Michael J. Gullans
Phys. Rev. Research 7, 013040 (2025) - Published 10 January, 2025
M. Kondo, M. Kimata, M. Ochi, T. Kaneko, K. Kuroki, K. Sudo, S. Sakaguchi, H. Murakawa, N. Hanasaki, and H. Sakai
Phys. Rev. Research 7, 013041 (2025) - Published 10 January, 2025
Edvin G. Idrisov, Ivan P. Levkivskyi, and Eugene V. Sukhorukov
Phys. Rev. Research 7, 013042 (2025) - Published 13 January, 2025
Huai-Chun Chang, Hsiu-Chuan Hsu, and Yu-Cheng Lin
Phys. Rev. Research 7, 013043 (2025) - Published 13 January, 2025
Enrico Skoruppa and Helmut Schiessel
Phys. Rev. Research 7, 013044 (2025) - Published 14 January, 2025
Nico Ackermann, Samuel Morales, Alfredo Levy Yeyati, Sebastian Diehl, and Reinhold Egger
Phys. Rev. Research 7, 013045 (2025) - Published 13 January, 2025
Niels Geerits, Stephan Sponar, Kyle E. Steffen, William M. Snow, Steven R. Parnell, Giacomo Mauri, Gregory N. Smith, Robert M. Dalgliesh, and Victor de Haan
Phys. Rev. Research 7, 013046 (2025) - Published 13 January, 2025
Rambabu Rajpoot and Eiji J. Takahashi
Phys. Rev. Research 7, 013047 (2025) - Published 13 January, 2025
Hong Fang, Joel Therrien, and Puru Jena
Phys. Rev. Research 7, 013048 (2025) - Published 13 January, 2025
Yu Du, Zefang Wang, Hanyu Liu, Guoji Liu, and Xin Zhong
Phys. Rev. Research 7, 013049 (2025) - Published 13 January, 2025
Tomoya Naito (内藤智也), Masaaki Kimura (木村真明), and Masaki Sasano (笹野匡紀)
Phys. Rev. Research 7, 013050 (2025) - Published 13 January, 2025
Yihao Guo, Anne Limburg, Jesse Laarman, Jannis Teunissen, and Sander Nijdam
Phys. Rev. Research 7, 013051 (2025) - Published 15 January, 2025
S. V. Pineda et al.
Phys. Rev. Research 7, 013052 (2025) - Published 15 January, 2025
Alexandru Golic, Igor Timoshuk, Egor Babaev, and Boris Svistunov
Phys. Rev. Research 7, 013053 (2025) - Published 15 January, 2025
Xing Huang, Yuzhuo Wang, Jian Zhao, and Saijun Wu
Phys. Rev. Research 7, 013054 (2025) - Published 15 January, 2025
Ella M. King, Mia C. Morrell, Jacqueline B. Sustiel, Matthew Gronert, Hayden Pastor, and David G. Grier
Phys. Rev. Research 7, 013055 (2025) - Published 15 January, 2025
Bo-Hao Wu, Xin-Xin Yang, Wei Zhang, and Yu Chen
Phys. Rev. Research 7, 013056 (2025) - Published 15 January, 2025
Chun-Wang Wu, Man-Chao Zhang, Yan-Li Zhou, Ting Chen, Ran Huang, Yi Xie, Wen-bo Su, Bao-Quan Ou, Wei Wu, Adam Miranowicz, Franco Nori, Jie Zhang, Hui Jing, and Ping-Xing Chen
Phys. Rev. Research 7, 013058 (2025) - Published 15 January, 2025
Rajeev Kumar, Shuaifang Zhang, and P. Ganesh
Phys. Rev. Research 7, 013059 (2025) - Published 15 January, 2025
Milica Banić, J. E. Sipe, and Marco Liscidini
Phys. Rev. Research 7, 013060 (2025) - Published 16 January, 2025
V. Yu. Mylnikov, S. O. Potashin, G. S. Sokolovskii, and N. S. Averkiev
Phys. Rev. Research 7, 013061 (2025) - Published 16 January, 2025
J. Eix, R. Bai, T. Lahaye, A. Browaeys, H. P. Büchler, and S. Weber
Phys. Rev. Research 7, 013062 (2025) - Published 16 January, 2025
A. V. Berezutskii, I. A. Luchnikov, and A. K. Fedorov
Phys. Rev. Research 7, 013063 (2025) - Published 16 January, 2025
Shohei Imai and Naoto Tsuji
Phys. Rev. Research 7, 013064 (2025) - Published 16 January, 2025
Pablo Villegas, Andrea Gabrielli, Anna Poggialini, and Tommaso Gili
Phys. Rev. Research 7, 013065 (2025) - Published 17 January, 2025
Robert Vedin and Jack Lidmar
Phys. Rev. Research 7, 013066 (2025) - Published 17 January, 2025
Omer Rathore, Alastair Basden, Nicholas Chancellor, and Halim Kusumaatmaja
Phys. Rev. Research 7, 013067 (2025) - Published 17 January, 2025
Kaoru Mizuta
Phys. Rev. Research 7, 013068 (2025) - Published 17 January, 2025
Sean A. Adamson
Phys. Rev. Research 7, 013069 (2025) - Published 21 January, 2025
Andrew Jreissaty and Juan Carrasquilla
Phys. Rev. Research 7, 013070 (2025) - Published 21 January, 2025
Z. B. Wu, Y. L. Yao, X. F. Shen, K. Li, A. D. Liu, X. T. He, and B. Qiao
Phys. Rev. Research 7, 013071 (2025) - Published 21 January, 2025
C. Fasolato, E. Stellino, F. Sacchetti, and C. Petrillo
Phys. Rev. Research 7, 013072 (2025) - Published 21 January, 2025
R. Flores-Calderón, Md Mursalin Islam, Michele Pini, and Francesco Piazza
Phys. Rev. Research 7, 013073 (2025) - Published 21 January, 2025
P. Tsintari et al.
Phys. Rev. Research 7, 013074 (2025) - Published 21 January, 2025
N. Pradeep Kumar, Dat Thanh Le, Prasanna Pakkiam, Thomas M. Stace, and Arkady Fedorov
Phys. Rev. Research 7, 013075 (2025) - Published 21 January, 2025
Hisa-Aki Tanaka, Somei Suga, Akira Keida, Hiroya Nakao, Yutaka Jitsumatsu, and István Z. Kiss
Phys. Rev. Research 7, 013076 (2025) - Published 21 January, 2025
Mar Ferri-Cortés, José A. Almanza-Marrero, Rosa López, Roberta Zambrini, and Gonzalo Manzano
Phys. Rev. Research 7, 013077 (2025) - Published 21 January, 2025
David B. Reinhardt, Dean Lee, Wolfgang P. Schleich, and Matthias Meister
Phys. Rev. Research 7, 013078 (2025) - Published 21 January, 2025
Quentin W. Richter, Jan M. Kaspari, Thomas K. Bracht, Leonid Yatsenko, Vollrath Martin Axt, Arno Rauschenbeutel, and Doris E. Reiter
Phys. Rev. Research 7, 013079 (2025) - Published 21 January, 2025
Jean Barbier, Francesco Camilli, Yizhou Xu, and Marco Mondelli
Phys. Rev. Research 7, 013081 (2025) - Published 22 January, 2025
Paul San Sebastian Sein, Mikel Cañizo, and Román Orús
Phys. Rev. Research 7, 013082 (2025) - Published 22 January, 2025
Harrison Hartle and Naoki Masuda
Phys. Rev. Research 7, 013083 (2025) - Published 22 January, 2025
Yang Liu, Jincheng Lu, Zhongfei Xiong, Fan O. Wu, Demetrios Christodoulides, Yuntian Chen, and Jian-Hua Jiang
Phys. Rev. Research 7, 013084 (2025) - Published 23 January, 2025
Ryui Kaneko, Masatoshi Imada, Yoshiyuki Kabashima, and Tomi Ohtsuki
Phys. Rev. Research 7, 013085 (2025) - Published 23 January, 2025
Hidehiro Saito and Chisa Hotta
Phys. Rev. Research 7, 013086 (2025) - Published 23 January, 2025
Jorge Estrada-Álvarez, Francisco Domínguez-Adame, and Elena Díaz
Phys. Rev. Research 7, 013087 (2025) - Published 23 January, 2025
Oleksandr V. Pylypovskyi, Enrico Di Benedetto, Carmine Ortix, and Denys Makarov
Phys. Rev. Research 7, 013088 (2025) - Published 23 January, 2025
Wojciech Brzezicki, Timo Hyart, and Francesco Massel
Phys. Rev. Research 7, 013089 (2025) - Published 23 January, 2025
Tobias Schnurrenberger, Lucas Happ, and Maxim A. Efremov
Phys. Rev. Research 7, 013090 (2025) - Published 23 January, 2025
Bao Jie Zheng, Wei Jie Shi, Hui Yuan Dong, Yong Tao Li, Jia Qi Li, Zheng-Gao Dong, and Jin Wang
Phys. Rev. Research 7, 013091 (2025) - Published 23 January, 2025
Soshun Ozaki and Hosho Katsura
Phys. Rev. Research 7, 013092 (2025) - Published 23 January, 2025
Davis M. Welakuh, Vasil Rokaj, Michael Ruggenthaler, and Angel Rubio
Phys. Rev. Research 7, 013093 (2025) - Published 23 January, 2025
Yilong Ju, Shah Saad Alam, Jonathan Minoff, Fabio Anselmi, Han Pu, and Ankit Patel
Phys. Rev. Research 7, 013094 (2025) - Published 23 January, 2025
A convolutional neural network (CNN) is used to learn the ground state of a quantum spin Hamiltonian. Methodologies from information theory, group theory, and machine learning are employed to elucidate how a CNN captures the relevant physics of the system.
Nathan J. Mowry, Constantin R. Krüger, Marcel Drabbels, and Ulrich J. Lorenz
Phys. Rev. Research 7, 013095 (2025) - Published 24 January, 2025
Tian-Chi Ma, Han-Qing Shi, Hai-Qing Zhang, and Adolfo del Campo
Phys. Rev. Research 7, 013096 (2025) - Published 24 January, 2025
Toby Kay and Luca Giuggioli
Phys. Rev. Research 7, 013097 (2025) - Published 24 January, 2025
Gernot Akemann, Federico Balducci, Aurélia Chenu, Patricia Päßler, Federico Roccati, and Ruth Shir
Phys. Rev. Research 7, 013098 (2025) - Published 27 January, 2025
Bijit Mukherjee and Jeremy M. Hutson
Phys. Rev. Research 7, 013099 (2025) - Published 27 January, 2025
Nicolas Heimann, Lukas Broers, and Ludwig Mathey
Phys. Rev. Research 7, 013101 (2025) - Published 27 January, 2025
Ralph Sabbagh, Olga Movilla Miangolarra, Hamid Hezari, and Tryphon T. Georgiou
Phys. Rev. Research 7, 013102 (2025) - Published 27 January, 2025
Zhi-Yu Xiao and Shiwei Zhang
Phys. Rev. Research 7, 013103 (2025) - Published 27 January, 2025
Dax Enshan Koh, Kaavya Kumar, and Siong Thye Goh
Phys. Rev. Research 7, 013104 (2025) - Published 27 January, 2025
Rahul Arvind, Kishor Bharti, Jun Yong Khoo, Dax Enshan Koh, and Jian Feng Kong
Phys. Rev. Research 7, 013105 (2025) - Published 27 January, 2025
Qing Xu, Ke Zhang, Xiaobo Shen, Haijun Yu, and Jiabing Zhu
Phys. Rev. Research 7, 013106 (2025) - Published 27 January, 2025
Yuelin Shao and Xi Dai
Phys. Rev. Research 7, 013109 (2025) - Published 29 January, 2025
Serena Landers, William Tuxbury, Ilya Vitebskiy, and Tsampikos Kottos
Phys. Rev. Research 7, 013110 (2025) - Published 29 January, 2025
Leonhard Hölscher, Pooja Rao, Lukas Müller, Johannes Klepsch, Andre Luckow, Tobias Stollenwerk, and Frank K. Wilhelm
Phys. Rev. Research 7, 013112 (2025) - Published 29 January, 2025
Nimrod Sherf and Maoz Shamir
Phys. Rev. Research 7, 013113 (2025) - Published 29 January, 2025
Omar Mehio, Yuchen Han, Xinwei Li, Honglie Ning, Zach Porter, Stephen D. Wilson, and David Hsieh
Phys. Rev. Research 7, 013114 (2025) - Published 30 January, 2025
Ying Li
Phys. Rev. Research 7, 013115 (2025) - Published 30 January, 2025
Dehua Chen, Ruohua Gao, Zhiyin Yang, Siyu Huo, and Zonghua Liu
Phys. Rev. Research 7, 013116 (2025) - Published 30 January, 2025
Alena Romanova and Peter van Loock
Phys. Rev. Research 7, 013117 (2025) - Published 30 January, 2025
Anna Sappington and Vaibhav Mohanty
Phys. Rev. Research 7, 013118 (2025) - Published 30 January, 2025
Ryutaro Matsui and Yasuaki Kishimoto
Phys. Rev. Research 7, 013119 (2025) - Published 31 January, 2025
M. S. Mirmoosa, T. Setälä, and A. Norrman
Phys. Rev. Research 7, 013120 (2025) - Published 31 January, 2025
Christopher Koh, Laurent Pagnier, and Michael Chertkov
Phys. Rev. Research 7, 013121 (2025) - Published 31 January, 2025
Eduardo Ibarra-García-Padilla, Hannah Lange, Roger G. Melko, Richard T. Scalettar, Juan Carrasquilla, Annabelle Bohrdt, and Ehsan Khatami
Phys. Rev. Research 7, 013122 (2025) - Published 3 February, 2025
András Grabarits, Gaetano Sammartino, and Adolfo del Campo
Phys. Rev. Research 7, 013123 (2025) - Published 3 February, 2025
Takahiro Kanazawa, Kyogo Kawaguchi, and Kyosuke Adachi
Phys. Rev. Research 7, 013124 (2025) - Published 3 February, 2025
Manish Patel, Amir Shee, and Debasish Chaudhuri
Phys. Rev. Research 7, 013126 (2025) - Published 3 February, 2025
Gili Scharf, Daniel Guterding, Bar Hen, Paul M. Sarte, Brenden R. Ortiz, Gregory Kh. Rozenberg, Tobias Holder, Stephen D. Wilson, Harald O. Jeschke, and Alon Ron
Phys. Rev. Research 7, 013127 (2025) - Published 3 February, 2025
Ashutosh Vijay Kotwal
Phys. Rev. Research 7, 013128 (2025) - Published 3 February, 2025
Dairong Chen, Andrew D. Kent, Dries Sels, and Flaviano Morone
Phys. Rev. Research 7, 013129 (2025) - Published 3 February, 2025
Steve M. Young and Daniel Soh
Phys. Rev. Research 7, 013130 (2025) - Published 3 February, 2025
James Daniel Brandenburg, Haowu Duan, Zhoudunming Tu, Raju Venugopalan, and Zhangbu Xu
Phys. Rev. Research 7, 013131 (2025) - Published 4 February, 2025
Maxim Vavilin, Juan Diego Mazo-Vásquez, and Ivan Fernandez-Corbaton
Phys. Rev. Research 7, 013132 (2025) - Published 4 February, 2025
Xuecheng Tao, John P. Philbin, and Prineha Narang
Phys. Rev. Research 7, 013133 (2025) - Published 5 February, 2025
Michelle Cirunay, Géza Ódor, István Papp, and Gustavo Deco
Phys. Rev. Research 7, 013134 (2025) - Published 5 February, 2025
Anna Dawid, Niccoló Bigagli, Daniel W. Savin, and Sebastian Will
Phys. Rev. Research 7, 013135 (2025) - Published 6 February, 2025
Masoud Hamidi, Kirill Koshelev, Sergei Gladyshev, Adrià Canós Valero, Mario Hentschel, Harald Giessen, Yuri Kivshar, and Thomas Weiss
Phys. Rev. Research 7, 013136 (2025) - Published 6 February, 2025
María Martínez-Barbeito, Damià Gomila, Pere Colet, Julian Fritzsch, and Philippe Jacquod
Phys. Rev. Research 7, 013137 (2025) - Published 6 February, 2025
Qingtian Miao and G. S. Agarwal
Phys. Rev. Research 7, 013138 (2025) - Published 6 February, 2025
J. F. Parisi, J. W. Berkery, A. Sladkomedova, S. Guizzo, M. R. Hardman, J. R. Ball, A. O. Nelson, S. M. Kaye, M. Anastopoulos-Tzanis, S. A. M. McNamara, J. Dominski, S. Janhunen, M. Romanelli, D. Dickinson, A. Diallo, A. Dnestrovskii, W. Guttenfelder, C. Hansen, O. Myatra, and H. R. Wilson
Phys. Rev. Research 7, 013139 (2025) - Published 7 February, 2025
Lei Du and Anton Frisk Kockum
Phys. Rev. Research 7, 013140 (2025) - Published 7 February, 2025
Usman Ali, Martin Holthaus, and Torsten Meier
Phys. Rev. Research 7, 013141 (2025) - Published 7 February, 2025
Segun Goh, Elmar Westphal, Roland G. Winkler, and Gerhard Gompper
Phys. Rev. Research 7, 013142 (2025) - Published 7 February, 2025
Thibault Bonnemain, Gino Biondini, Benjamin Doyon, Giacomo Roberti, and Gennady A. El
Phys. Rev. Research 7, 013143 (2025) - Published 7 February, 2025
Victoria Zhang, Stefan Ostermann, Oriol Rubies-Bigorda, and Susanne F. Yelin
Phys. Rev. Research 7, 013144 (2025) - Published 10 February, 2025
A. Mert Bozkurt, Rosa López, and Sungguen Ryu
Phys. Rev. Research 7, 013145 (2025) - Published 10 February, 2025
András Grabarits, Kasturi Ranjan Swain, Mahsa Seyed Heydari, Pranav Chandarana, Fernando J. Gómez-Ruiz, and Adolfo del Campo
Phys. Rev. Research 7, 013146 (2025) - Published 11 February, 2025
Samuel Duffield, Maxwell Aifer, Gavin Crooks, Thomas Ahle, and Patrick J. Coles
Phys. Rev. Research 7, 013147 (2025) - Published 10 February, 2025
Roeland Wiersema, Alexander F. Kemper, Bojko N. Bakalov, and Nathan Killoran
Phys. Rev. Research 7, 013148 (2025) - Published 10 February, 2025
Katsuhiro Endo and Kazuaki Z. Takahashi
Phys. Rev. Research 7, 013149 (2025) - Published 11 February, 2025
James S. Cummins, Hayder Salman, and Natalia G. Berloff
Phys. Rev. Research 7, 013150 (2025) - Published 11 February, 2025
Jianying Du, Yanjiang Guo, and Baowen Li
Phys. Rev. Research 7, 013151 (2025) - Published 12 February, 2025
Felipe A. Barros, Hugo N. Ulloa, Gabriel Aguayo, Arnold J. T. M. Mathijssen, and Francisca Guzmán-Lastra
Phys. Rev. Research 7, 013152 (2025) - Published 12 February, 2025
Shubhadip Nayak, Poulami Bag, Pulak K. Ghosh, Yunyun Li, Yuxin Zhou, Qingqing Yin, Fabio Marchesoni, and Franco Nori
Phys. Rev. Research 7, 013153 (2025) - Published 12 February, 2025
Jun-Yi Wu and Shin-Tza Wu
Phys. Rev. Research 7, 013154 (2025) - Published 12 February, 2025
C. Reichhardt and C. J. O. Reichhardt
Phys. Rev. Research 7, 013155 (2025) - Published 12 February, 2025
M. A. García-Blázquez and J. J. Palacios
Phys. Rev. Research 7, 013156 (2025) - Published 12 February, 2025
Sadjad Arzash, Indrajit Tah, Andrea J. Liu, and M. Lisa Manning
Phys. Rev. Research 7, 013157 (2025) - Published 12 February, 2025
Shin-Yu Lee, Sven Ahrens, and Wen-Te Liao
Phys. Rev. Research 7, 013158 (2025) - Published 12 February, 2025
Xing Tang, Tian Chen, and Xiangdong Zhang
Phys. Rev. Research 7, 013159 (2025) - Published 13 February, 2025
I. Maccari, L. Benfatto, C. Castellani, J. Lorenzana, and C. De Michele
Phys. Rev. Research 7, 013160 (2025) - Published 13 February, 2025
Pengju Chen, Da-Wei Luo, and Ting Yu
Phys. Rev. Research 7, 013161 (2025) - Published 13 February, 2025
Thomas B. Mieling and Mario Hudelist
Phys. Rev. Research 7, 013162 (2025) - Published 13 February, 2025
A rigorous description of fiber optics in general stationary space-times is developed that accounts both for arbitrary fiber alignments and for gravity beyond the linearized regime. In addition to extending previous theoretical models of the Sagnac effect and the gravitational redshift, this work also predicts higher-order effects in the dynamics of the electromagnetic phase and polarization.
A. L. Milder, C. Bruulsema, S. Hüller, C. Walsh, W. Rozmus, L. Yin, J. Ludwig, W. A. Farmer, B. J. Albright, H. A. Rose, and G. Swadling
Phys. Rev. Research 7, 013163 (2025) - Published 13 February, 2025
Lei Zhang, Mengge Du, Xiaodong Bai, Yuntian Chen, and Dongxiao Zhang
Phys. Rev. Research 7, 013164 (2025) - Published 13 February, 2025
Sam Azadi, M. S. Bahramy, and T. D. Kühne
Phys. Rev. Research 7, 013165 (2025) - Published 14 February, 2025
Luka Medic, Anton Ramšak, and Tomaž Rejec
Phys. Rev. Research 7, 013166 (2025) - Published 14 February, 2025
Jordi Pera, Joaquim Casulleras, and Jordi Boronat
Phys. Rev. Research 7, 013167 (2025) - Published 14 February, 2025
T. Kubo, T. Miyamoto, N. Takamura, M. Yamamoto, R. Ikeda, T. Sato, and H. Okamoto
Phys. Rev. Research 7, 013168 (2025) - Published 14 February, 2025
A. Ghosh and A. M. Martin
Phys. Rev. Research 7, 013169 (2025) - Published 14 February, 2025
Natalia Masalaeva and Farokh Mivehvar
Phys. Rev. Research 7, 013170 (2025) - Published 18 February, 2025
R. Muffato, T. S. Georgescu, J. Homans, T. Guerreiro, Q. Wu, D. A. Chisholm, M. Carlesso, M. Paternostro, and H. Ulbricht
Phys. Rev. Research 7, 013171 (2025) - Published 18 February, 2025
Martin Unzog, Alexey Tal, Pedro Melo, Ryosuke Senga, Kazu Suenaga, Thomas Pichler, and Georg Kresse
Phys. Rev. Research 7, 013172 (2025) - Published 18 February, 2025
Tomoki Ozawa and Henning Schomerus
Phys. Rev. Research 7, 013173 (2025) - Published 18 February, 2025
Yogendra Kumar, Shiv Kumar, Venkateswara Yenugonda, Ryohei Oishi, Jayita Nayak, Chaoyu Chen, Ravi Prakash Singh, Takahiro Onimaru, Yasuyuki Shimura, Shin-ichiro Ideta, and Kenya Shimada
Phys. Rev. Research 7, 013174 (2025) - Published 18 February, 2025
Sami C. Al-Izzi, Sedigheh Ghanbarzadeh Nodehi, Darius V. Köster, and Richard G. Morris
Phys. Rev. Research 7, 013175 (2025) - Published 18 February, 2025
M. Werl, T. Koller, P. Haidegger, S. Wrathall, L. Eßletzbichler, A. Niggas, F. Aumayr, K. Tőkési, and R. A. Wilhelm
Phys. Rev. Research 7, 013176 (2025) - Published 18 February, 2025
Sixuan Wu, Yue Zhang, and Jian Li
Phys. Rev. Research 7, 013177 (2025) - Published 18 February, 2025
Jannis Eckseler and Jürgen Schnack
Phys. Rev. Research 7, 013178 (2025) - Published 18 February, 2025
F. Candelier, K. Gustavsson, P. Sharma, L. Sundberg, A. Pumir, G. Bagheri, and B. Mehlig
Phys. Rev. Research 7, 013179 (2025) - Published 18 February, 2025
R. O. Kuzian, D. V. Efremov, and E. E. Krasovskii
Phys. Rev. Research 7, 013180 (2025) - Published 19 February, 2025
Adway Kumar Das, Cameron Cianci, Delmar G. A. Cabral, David A. Zarate-Herrada, Patrick Pinney, Saúl Pilatowsky-Cameo, Apollonas S. Matsoukas-Roubeas, Victor S. Batista, Adolfo del Campo, E. Jonathan Torres-Herrera, and Lea F. Santos
Phys. Rev. Research 7, 013181 (2025) - Published 19 February, 2025
Kangle Li, Yan-Bai Zhang, and Hoi Chun Po
Phys. Rev. Research 7, 013182 (2025) - Published 19 February, 2025
Xinyang Zhang, Jinze Wu, Alexander Palevski, and Aharon Kapitulnik
Phys. Rev. Research 7, 013183 (2025) - Published 20 February, 2025
Zhongchi Zhang, Zihan Zhao, Huaichuan Wang, Ken Deng, Yuqi Liu, Wenlan Chen, and Jiazhong Hu
Phys. Rev. Research 7, 013184 (2025) - Published 20 February, 2025
Hyeongjoo Row, Joshua B. Fernandes, Kranthi K. Mandadapu, and Karthik Shekhar
Phys. Rev. Research 7, 013185 (2025) - Published 21 February, 2025
Ao Xu, C. Reichhardt, C. J. O. Reichhardt, and Yan Feng
Phys. Rev. Research 7, 013186 (2025) - Published 21 February, 2025
Kevin T. Geier, Jeff Maki, Alberto Biella, Franco Dalfovo, Stefano Giorgini, and Sandro Stringari
Phys. Rev. Research 7, 013187 (2025) - Published 21 February, 2025
Vudtiwat Ngampruetikorn, Ilya Nemenman, and David J. Schwab
Phys. Rev. Research 7, 013188 (2025) - Published 21 February, 2025
Ignazio Vacante, Francesco M. D. Pellegrino, G. G. N. Angilella, Giuseppe A. Falci, and Elisabetta Paladino
Phys. Rev. Research 7, 013189 (2025) - Published 21 February, 2025
Fernando Redivo Cardoso, Jaewon Lee, Riccardo Checchinato, Jan-Heinrich Littmann, Marco De Gregorio, Sven Höfling, Christian Schneider, Celso J. Villas-Boas, and Ana Predojević
Phys. Rev. Research 7, 013190 (2025) - Published 21 February, 2025
Daniel Marti-Dafcik, Hugh G. A. Burton, and David P. Tew
Phys. Rev. Research 7, 013191 (2025) - Published 24 February, 2025
Harpreet Singh, Noella D'Souza, Keyuan Zhong, Emanuel Druga, Julianne Oshiro, Brian Blankenship, Riccardo Montis, Jeffrey A. Reimer, Jonathan D. Breeze, and Ashok Ajoy
Phys. Rev. Research 7, 013192 (2025) - Published 24 February, 2025
C. Davut, G. Xia, O. Apsimon, J. McGunigal, P. Karataev, T. Lefevre, S. Mazzoni, and E. Senes
Phys. Rev. Research 7, 013193 (2025) - Published 24 February, 2025
Pascal M. Vecsei and Jose L. Lado
Phys. Rev. Research 7, 013194 (2025) - Published 24 February, 2025
Vladyslav M. Kuchkin, Andreas Haller, Štefan Liščák, Michael P. Adams, Venus Rai, Evelyn P. Sinaga, Andreas Michels, and Thomas L. Schmidt
Phys. Rev. Research 7, 013195 (2025) - Published 24 February, 2025
Paul Frederik Depta, Kai Schmidt-Hoberg, Pedro Schwaller, and Carlo Tasillo
Phys. Rev. Research 7, 013196 (2025) - Published 24 February, 2025
Rafael S. Eggli, Taras Patlatiuk, Eoin G. Kelly, Alexei Orekhov, Gian Salis, Richard J. Warburton, Dominik M. Zumbühl, and Andreas V. Kuhlmann
Phys. Rev. Research 7, 013197 (2025) - Published 24 February, 2025
Catalin-Mihai Halati and Thierry Giamarchi
Phys. Rev. Research 7, 013199 (2025) - Published 24 February, 2025
K. Ji, M. Schnedler, Q. Lan, J.-F. Carlin, R. Butté, N. Grandjean, R. E. Dunin-Borkowski, and Ph. Ebert
Phys. Rev. Research 7, 013200 (2025) - Published 24 February, 2025
Andrey Kardashin, Yerassyl Balkybek, Vladimir V. Palyulin, and Konstantin Antipin
Phys. Rev. Research 7, 013201 (2025) - Published 25 February, 2025
G. Ortali, A. Gabbana, N. Demo, G. Rozza, and F. Toschi
Phys. Rev. Research 7, 013202 (2025) - Published 25 February, 2025
R. Ruffini, C. L. Bianco, M. Prakapenia, H. Quevedo, J. A. Rueda, and S. Zhang
Phys. Rev. Research 7, 013203 (2025) - Published 25 February, 2025
Aodong Li, Bingcong Xu, and Biye Xie
Phys. Rev. Research 7, 013204 (2025) - Published 25 February, 2025
Yuliang Zou, Benjamin Maillet, Philippe Coussot, and Laurent Brochard
Phys. Rev. Research 7, 013205 (2025) - Published 25 February, 2025
Hilary M. Hurst, Yik Haw Teoh, and I. B. Spielman
Phys. Rev. Research 7, 013206 (2025) - Published 25 February, 2025
Jaume Ojer, Michele Starnini, and Romualdo Pastor-Satorras
Phys. Rev. Research 7, 013207 (2025) - Published 26 February, 2025
Júlia Barberà-Rodríguez, Leonardo Zambrano, Antonio Acín, and Donato Farina
Phys. Rev. Research 7, 013208 (2025) - Published 26 February, 2025
Roosmarijn de Wit, Jonathan Keeling, Brendon W. Lovett, and Alex W. Chin
Phys. Rev. Research 7, 013209 (2025) - Published 26 February, 2025
Wen Bao, Ming-Gen Li, Rui Xing, and Jing-Dong Bao
Phys. Rev. Research 7, 013210 (2025) - Published 26 February, 2025
Elias Pescoller, Marie Eder, and Iva Březinová
Phys. Rev. Research 7, 013211 (2025) - Published 26 February, 2025
Katinka Horn, Svetlana Tsizin, Loren Ban, Egor Chasovskikh, Bruce L. Yoder, Francesca Calegari, and Ruth Signorell
Phys. Rev. Research 7, 013212 (2025) - Published 26 February, 2025
Etienne Granet, Kévin Hémery, and Henrik Dreyer
Phys. Rev. Research 7, 013213 (2025) - Published 27 February, 2025
Dimitrios Mataragkas, Alexandros Vasilopoulos, Nikolaos G. Fytas, and Dong-Hee Kim
Phys. Rev. Research 7, 013214 (2025) - Published 27 February, 2025
Tricriticality occurs when first- and second-order phase transitions meet on the phase boundary, making it difficult to study using a single numerical approach. A proposed combined strategy offers insights that lay the groundwork for a better understanding of tricriticality in condensed-matter physics.
Jose Soto-Garcia and Natalia Chepiga
Phys. Rev. Research 7, 013215 (2025) - Published 27 February, 2025
Hyeon Kim, Chul Min Kim, Ki Hong Pae, and Kyung Taec Kim
Phys. Rev. Research 7, 013216 (2025) - Published 27 February, 2025
Seong-Ho Shinn and Adolfo del Campo
Phys. Rev. Research 7, 013217 (2025) - Published 27 February, 2025
Michael F. Staddon and Carl D. Modes
Phys. Rev. Research 7, 013218 (2025) - Published 27 February, 2025
In the vertex model, an epithelial tissue is described as a tiling of polygons, each with elastic properties, and a solid-to-fluid phase transition can be exhibited. While most models enforce straight edges, it is shown that allowing curved edges, consistent with the Young-Laplace law, can significantly increase the fluidity of the tissue, allowing cells to rearrange more easily.
Huaxin He, Fengtao Pang, Yongping Zhang, and Chunlei Qu
Phys. Rev. Research 7, 013219 (2025) - Published 27 February, 2025
Amir Kalev and Itay Hen
Phys. Rev. Research 7, 013220 (2025) - Published 27 February, 2025
Yuquan Chen, Yanjun Hou, Zeyuan Wang, Tianyun Wang, Ze Wu, Zhaokai Li, and Xinhua Peng
Phys. Rev. Research 7, 013221 (2025) - Published 27 February, 2025
B. F. Gribakin, S. Cronenberger, H. Boukari, and D. Scalbert
Phys. Rev. Research 7, 013222 (2025) - Published 28 February, 2025
Julius Kullig and Jan Wiersig
Phys. Rev. Research 7, 013223 (2025) - Published 28 February, 2025
Tiancheng Song, Yanyu Jia, Guo Yu, Yue Tang, Ayelet J. Uzan, Zhaoyi Joy Zheng, Haosen Guan, Michael Onyszczak, Ratnadwip Singha, Xin Gui, Kenji Watanabe, Takashi Taniguchi, Robert J. Cava, Leslie M. Schoop, N. P. Ong, and Sanfeng Wu
Phys. Rev. Research 7, 013224 (2025) - Published 28 February, 2025
Klejdja Xhani, Andrea Barresi, Marek Tylutki, Gabriel Wlazłowski, and Piotr Magierski
Phys. Rev. Research 7, 013225 (2025) - Published 28 February, 2025
Bauyrzhan K. Primkulov, Davis J. Evans, Valeri Frumkin, Pedro J. Sáenz, and John W. M. Bush
Phys. Rev. Research 7, 013226 (2025) - Published 28 February, 2025
Y. Zhang, J. C. Zuñiga Castro, and R. J. Lewis-Swan
Phys. Rev. Research 7, 013227 (2025) - Published 28 February, 2025
Yuanxi Yu (余元玺), Fan Jiang (姜帆), Bozitao Zhong (钟博子韬), Liang Hong (洪亮), and Mingchen Li (李明辰)
Phys. Rev. Research 7, 013229 (2025) - Published 28 February, 2025
D. P. Molloy, D. Orecchia, M. Tosca, A. Milani, M. Valt, A. McNamee, C. R. J. Fitzpatrick, V. Kantarelou, J. P. Kennedy, P. Martin, G. Nersisyan, K. Biliak, M. Protsak, D. Nikitin, M. Borghesi, A. Choukourov, L. Giuffrida, S. Kar, A. Maffini, M. Passoni, A. Picciotto, and D. Margarone
Phys. Rev. Research 7, 013230 (2025) - Published 28 February, 2025
Stuart Ferguson and Petros Wallden
Phys. Rev. Research 7, 013231 (2025) - Published 3 March, 2025
Julien Lecoffre, Ayoub Hadi, Matthieu Bruneau, Charles Garcion, Nathalie Fabre, Éric Charron, Naceur Gaaloul, Gabriel Dutier, and Quentin Bouton
Phys. Rev. Research 7, 013232 (2025) - Published 3 March, 2025
Hiroaki Mamiya, Noriki Terada, Simon Rosenqvist Larsen, Naohito Tsujii, Kosuke Hiroi, Takenao Shinohara, and Hossein Sepehri-Amin
Phys. Rev. Research 7, 013233 (2025) - Published 3 March, 2025
Yu Duan, Jaime Agudo-Canalejo, Ramin Golestanian, and Benoît Mahault
Phys. Rev. Research 7, 013234 (2025) - Published 3 March, 2025
Zhihua Zhong, Hideki Takayasu, and Misako Takayasu
Phys. Rev. Research 7, 013235 (2025) - Published 3 March, 2025
Anna Francuz, Norbert Schuch, and Bram Vanhecke
Phys. Rev. Research 7, 013237 (2025) - Published 4 March, 2025
Biao Xiong, Qian Bin, Shi-Lei Chao, Ji-Bing Liu, and Xin-You Lü
Phys. Rev. Research 7, 013238 (2025) - Published 4 March, 2025
Haruki Matsunaga and Le Bin Ho
Phys. Rev. Research 7, 013239 (2025) - Published 4 March, 2025
S. V. Rahul, R. Sabui, R. M. G. M Trines, R. Gopal, A. Mondal, T. Sairam, D. Sahu, S. Khanna, A. Robinson, and M. Krishnamurthy
Phys. Rev. Research 7, 013240 (2025) - Published 4 March, 2025
Jun-Yin Huang, Hong-Ya Xu, Liang Huang, and Ying-Cheng Lai
Phys. Rev. Research 7, 013241 (2025) - Published 5 March, 2025
Jacob Horak, Dominik Sidler, Thomas Schnappinger, Wei-Ming Huang, Michael Ruggenthaler, and Angel Rubio
Phys. Rev. Research 7, 013242 (2025) - Published 5 March, 2025
Yue Ruan, Pengyue Chen, Qi Li, Ling Yang, Zhiqiang Yuan, Xiling Xue, Xi Li, and Zhihao Liu
Phys. Rev. Research 7, 013243 (2025) - Published 6 March, 2025
Kohei Yoshimura, Yoh Maekawa, Ryuna Nagayama, and Sosuke Ito
Phys. Rev. Research 7, 013244 (2025) - Published 6 March, 2025
Catie LeDesma, Kendall Mehling, John Drew Wilson, Marco Nicotra, and Murray Holland
Phys. Rev. Research 7, 013246 (2025) - Published 6 March, 2025
Bibi Najma, Saptorshi Ghosh, Christopher Amey, Peter J. Foster, Michael F. Hagan, Aparna Baskaran, and Guillaume Duclos
Phys. Rev. Research 7, 013247 (2025) - Published 6 March, 2025
Bassel Heiba Elfeky, Krishna Dindial, David S. Brandão, Bariş Pekerten, Jaewoo Lee, William M. Strickland, Patrick J. Strohbeen, Alisa Danilenko, Lukas Baker, Melissa Mikalsen, William Schiela, Zixuan Liang, Jacob Issokson, Ido Levy, Igor Žutić, and Javad Shabani
Phys. Rev. Research 7, 013248 (2025) - Published 6 March, 2025
Shouzhen Gu, Alex Retzker, and Aleksander Kubica
Phys. Rev. Research 7, 013249 (2025) - Published 6 March, 2025
Luca Di Carlo
Phys. Rev. Research 7, 013250 (2025) - Published 7 March, 2025
Seigo Kikura, Rui Asaoka, Masato Koashi, and Yuuki Tokunaga
Phys. Rev. Research 7, 013251 (2025) - Published 7 March, 2025
Samuel L. Jacob, Artur M. Lacerda, Yonatan Dubi, and John Goold
Phys. Rev. Research 7, 013252 (2025) - Published 7 March, 2025
Norifumi Matsumoto, Shoichiro Tsutsui, Yuya O. Nakagawa, Yuichiro Hidaka, Shota Kanasugi, Kazunori Maruyama, Hirotaka Oshima, and Shintaro Sato
Phys. Rev. Research 7, 013254 (2025) - Published 7 March, 2025
Yunxiao Zhang, Xuan Tang, Xueshi Guo, Liang Cui, Xiaoying Li, and Z. Y. Ou
Phys. Rev. Research 7, 013255 (2025) - Published 7 March, 2025
Li-Li Ye and Ying-Cheng Lai
Phys. Rev. Research 7, 013256 (2025) - Published 10 March, 2025
Paolo Molignini and Barnali Chakrabarti
Phys. Rev. Research 7, 013257 (2025) - Published 10 March, 2025
N. Mousavi, J. Qiu, L. Zhao, B. Mehlig, and K. Gustavsson
Phys. Rev. Research 7, 013258 (2025) - Published 10 March, 2025
Yicong Fu, Akihito Kiyama, Guoqin Liu, Likun Zhang, and Sunghwan Jung
Phys. Rev. Research 7, 013259 (2025) - Published 11 March, 2025
Elisabeth Richter, Michael Barth, Dmitriy A. Kozlov, Angelika Knothe, Nikolay N. Mikhailov, Juliane Steidl, Cosimo Gorini, Stefan Hartl, Wolfgang Himmler, Klaus Richter, and Dieter Weiss
Phys. Rev. Research 7, 013260 (2025) - Published 11 March, 2025
Marco Pettini
Phys. Rev. Research 7, 013261 (2025) - Published 12 March, 2025
Xiaofeng Luo, Runzi He, Lifeng Hou, Shupeng Gao, Zhen Jin, Gui-Quan Sun, Lili Chang, Ludovico Minati, and Stefano Boccaletti
Phys. Rev. Research 7, 013262 (2025) - Published 12 March, 2025
Aleksei Khindanov, Yongxin Yao, and Thomas Iadecola
Phys. Rev. Research 7, 013263 (2025) - Published 12 March, 2025
Pablo Rodriguez-Grasa, Ruben Ibarrondo, Javier Gonzalez-Conde, Yue Ban, Patrick Rebentrost, and Mikel Sanz
Phys. Rev. Research 7, 013264 (2025) - Published 12 March, 2025
Jian Wang, James Jun He, and Qian Niu
Phys. Rev. Research 7, 013265 (2025) - Published 12 March, 2025
Peng Liu, Dong Wu, Dawei Yuan, Gang Zhao, Zhengmao Sheng, Xiantu He, and Jie Zhang
Phys. Rev. Research 7, 013267 (2025) - Published 12 March, 2025
Bedoor Alkurtass, Abolfazl Bayat, Pasquale Sodano, Sougato Bose, and Henrik Johannesson
Phys. Rev. Research 7, 013268 (2025) - Published 13 March, 2025
Rie Maskawa, Hideki Takayasu, Lena Takayasu, Wataru Suda, and Misako Takayasu
Phys. Rev. Research 7, 013269 (2025) - Published 13 March, 2025
Axel Stenquist and Jan Marcus Dahlström
Phys. Rev. Research 7, 013270 (2025) - Published 14 March, 2025
Daniele Lamberto, Omar Di Stefano, Stephen Hughes, Franco Nori, and Salvatore Savasta
Phys. Rev. Research 7, 013271 (2025) - Published 14 March, 2025
Anshuman Tripathi, Felix Gerken, Peter Schmitteckert, Michael Thorwart, Mircea Trif, and Thore Posske
Phys. Rev. Research 7, 013272 (2025) - Published 14 March, 2025
S. Hartl, L. Freund, M. Kühn, J. Ziegler, E. Richter, W. Himmler, J. Bärenfänger, D. A. Kozlov, N. N. Mikhailov, J. Weis, and D. Weiss
Phys. Rev. Research 7, 013273 (2025) - Published 14 March, 2025
Tamar Levin and Ziv Meir
Phys. Rev. Research 7, 013274 (2025) - Published 17 March, 2025
Aritra Santra, Michel Orsi, Bulbul Chakraborty, and Jeffrey F. Morris
Phys. Rev. Research 7, 013275 (2025) - Published 17 March, 2025
Filippo Ferrari, Luca Gravina, Debbie Eeltink, Pasquale Scarlino, Vincenzo Savona, and Fabrizio Minganti
Phys. Rev. Research 7, 013276 (2025) - Published 17 March, 2025
A. Khansili, Y.-C. Huang, U. Häussermann, C. Pay Gomez, and A. Rydh
Phys. Rev. Research 7, 013277 (2025) - Published 17 March, 2025
Nima Ghafari Cherati, Anton Pershin, and Ádám Gali
Phys. Rev. Research 7, 013278 (2025) - Published 17 March, 2025
Kristian Blom, Dmitrii E. Makarov, and Aljaž Godec
Phys. Rev. Research 7, 013279 (2025) - Published 17 March, 2025
The Bennati-Dragulescu-Yakovenko asset-exchange model is studied in the presence of probabilistic cheaters that can falsely claim they are bankrupt. It is shown how the presence of such (hidden) cheaters can be inferred from the variance of the overall wealth distribution and that there exists a critical cheating probability at which the money owned by a small pool of cheaters undergoes a second-order discontinuity.
Shouvik Sur and Chandan Setty
Phys. Rev. Research 7, 013280 (2025) - Published 17 March, 2025
Stephen E. Kuenstner, Elizabeth C. van Assendelft, Saptarshi Chaudhuri, Hsiao-Mei Cho, Jason Corbin, Shawn W. Henderson, Fedja Kadribasic, Dale Li, Arran Phipps, Nicholas M. Rapidis, Maria Simanovskaia, Jyotirmai Singh, Cyndia Yu, and Kent D. Irwin
Phys. Rev. Research 7, 013281 (2025) - Published 17 March, 2025
Alicia Cordero, Juan R. Torregrosa, and Juan Bisquert
Phys. Rev. Research 7, 013282 (2025) - Published 18 March, 2025
Sandip Maiti, Debasish Banerjee, Bipasha Chakraborty, and Emilie Huffman
Phys. Rev. Research 7, 013283 (2025) - Published 18 March, 2025
Alessandro Ferreri, Hui Wang (王惠), Franco Nori (野理), Frank K. Wilhelm, and David Edward Bruschi
Phys. Rev. Research 7, 013284 (2025) - Published 18 March, 2025
Christopher F. Chyba, Kevin P. Hand, and Thomas H. Chyba
Phys. Rev. Research 7, 013285 (2025) - Published 19 March, 2025
Experiments support a controversial proposal to generate electricity from our planet’s rotation by using a device that interacts with Earth’s magnetic field.
Yunus Sevinchan, Petro Sarkanych, Abi Tenenbaum, Yurij Holovatch, and Pawel Romanczuk
Phys. Rev. Research 7, 013286 (2025) - Published 19 March, 2025
Jiaruo Yan, Ioannis Katsantonis, Ioannis Draganidis, Konstantinos Kourtzanidis, Alessio Monti, Stefano Vellucci, Mirko Barbuto, Filiberto Bilotti, and Maria Kafesaki
Phys. Rev. Research 7, 013287 (2025) - Published 19 March, 2025
Aneesh Ramaswamy and Svetlana A. Malinovskaya
Phys. Rev. Research 7, 013288 (2025) - Published 19 March, 2025
Alberto Carta, Iurii Timrov, Peter Mlkvik, Alexander Hampel, and Claude Ederer
Phys. Rev. Research 7, 013289 (2025) - Published 19 March, 2025
Thibault Sohier, Marco Gibertini, Ivar Martin, and Alberto F. Morpurgo
Phys. Rev. Research 7, 013290 (2025) - Published 19 March, 2025
Xiaohang Niu, Jingman Pang, Mengyuan Lin, Meiguang Zhang, Yu Qian, and Yun Zhang
Phys. Rev. Research 7, 013291 (2025) - Published 19 March, 2025
Swadheen Dubey, Georgy A. Kazakov, Benedikt Heizenreder, Sheng Zhou, Shayne Bennetts, Stefan Alaric Schäffer, Ananya Sitaram, and Florian Schreck (MoSaiQC Collaboration)
Phys. Rev. Research 7, 013292 (2025) - Published 19 March, 2025
Xin Li, Shuchen Zhang, Mark J. Bowick, and Duanduan Wan
Phys. Rev. Research 7, 013293 (2025) - Published 20 March, 2025
Brandon K. Russell, Marija Vranic, Paul T. Campbell, Alexander G. R. Thomas, Kevin M. Schoeffler, Dmitri A. Uzdensky, and Louise Willingale
Phys. Rev. Research 7, 013294 (2025) - Published 20 March, 2025
Meng Han, Hao Liang, Jan Michael Rost, Artem Rudenko, Charles Lewis Cocke, Uwe Thumm, Liang-You Peng, and Yunquan Liu
Phys. Rev. Research 7, 013295 (2025) - Published 21 March, 2025
Charlie Mattschas, Marius Puplauskis, Chris Toebes, Violetta Sharoglazova, and Jan Klaers
Phys. Rev. Research 7, 013296 (2025) - Published 21 March, 2025
Yu-Ao Chen, Xin Wang, Lei Zhang, and Chenghong Zhu
Phys. Rev. Research 7, 013297 (2025) - Published 21 March, 2025
J. Delpy, N. Fayard, F. Bretenaker, and F. Goldfarb
Phys. Rev. Research 7, 013298 (2025) - Published 21 March, 2025
Niall Byrnes and Matthew R. Foreman
Phys. Rev. Research 7, 013299 (2025) - Published 21 March, 2025
Wenhan Wu, Xiaoping Zheng, and Pawel Romanczuk
Phys. Rev. Research 7, 013300 (2025) - Published 21 March, 2025
Juan Manuel Monti, Yonatan Sanz Perl, Enzo Tagliazucchi, Morten L. Kringelbach, and Gustavo Deco
Phys. Rev. Research 7, 013301 (2025) - Published 21 March, 2025
Kaan Öcal and Michael P. H. Stumpf
Phys. Rev. Research 7, 013302 (2025) - Published 21 March, 2025
Mau Adachi, Kazuo Tsuchiya, and Shinya Aoi
Phys. Rev. Research 7, 013303 (2025) - Published 24 March, 2025
Ruyong Li, Arnau Romaguera, Oscar Fabelo, Xiaodong Zhang, Francois Fauth, and José Luis García-Muñoz
Phys. Rev. Research 7, 013304 (2025) - Published 24 March, 2025
Drilon Zenelaj, Peter Samuelsson, and Patrick P. Potts
Phys. Rev. Research 7, 013305 (2025) - Published 24 March, 2025
Ermal Rrapaj and Evan Rule
Phys. Rev. Research 7, 013306 (2025) - Published 24 March, 2025
Ryuna Nagayama, Kohei Yoshimura, and Sosuke Ito
Phys. Rev. Research 7, 013307 (2025) - Published 24 March, 2025
Joel Wagner, Simon Bauer, Sebastian Contreras, Luk Fleddermann, Ulrich Parlitz, and Viola Priesemann
Phys. Rev. Research 7, 013308 (2025) - Published 24 March, 2025
Oscar Arandes and Emil J. Bergholtz
Phys. Rev. Research 7, 013309 (2025) - Published 24 March, 2025
Jiaxuan Chen, Yicheng Song, and Akira Hirose
Phys. Rev. Research 7, 013310 (2025) - Published 24 March, 2025
Junsen Wang, Xiangxiang Sun, and Wei Zheng
Phys. Rev. Research 7, 013311 (2025) - Published 25 March, 2025
Brandon Slater, Alfredo Sciortino, Andreas R. Bausch, and Taeyoon Kim
Phys. Rev. Research 7, 013312 (2025) - Published 25 March, 2025
Josiah Sinclair, Joshua Ramette, Brandon Grinkemeyer, Dolev Bluvstein, Mikhail D. Lukin, and Vladan Vuletić
Phys. Rev. Research 7, 013313 (2025) - Published 25 March, 2025
Xiaojuan Ma, Indranil Gupta, and Yan Wang
Phys. Rev. Research 7, 013314 (2025) - Published 25 March, 2025
Iñaki Iriarte-Zendoia, Carlos Munuera-Javaloy, and Jorge Casanova
Phys. Rev. Research 7, 013315 (2025) - Published 26 March, 2025
Thanh Xuan Hoang, Daniel Leykam, Hong-Son Chu, Ching Eng Png, Francisco J. García-Vidal, and Yuri S. Kivshar
Phys. Rev. Research 7, 013316 (2025) - Published 26 March, 2025
V. Vadimov, M. Xu, J. T. Stockburger, J. Ankerhold, and M. Möttönen
Phys. Rev. Research 7, 013317 (2025) - Published 26 March, 2025
Meri Teeriaho, Ville-Vertti Linho, Koushik Swaminathan, and Sebastiano Peotta
Phys. Rev. Research 7, 013318 (2025) - Published 26 March, 2025
Shubhadeep Sadhukhan, Cristina Martinez-Torres, Samo Penič, Carsten Beta, Aleš Iglič, and Nir Gov
Phys. Rev. Research 7, 013319 (2025) - Published 27 March, 2025
Guodong Bian, Gergő Thiering, and Ádám Gali
Phys. Rev. Research 7, 013320 (2025) - Published 27 March, 2025
Jacek Dobrzyniecki, Paula Heim, and Michał Tomza
Phys. Rev. Research 7, 013321 (2025) - Published 27 March, 2025
Giuseppe Calajó, Giovanni Cataldi, Marco Rigobello, Darvin Wanisch, Giuseppe Magnifico, Pietro Silvi, Simone Montangero, and Jad C. Halimeh
Phys. Rev. Research 7, 013322 (2025) - Published 27 March, 2025
Kuniyuki Miwa, Souichi Sakamoto, Ken Funo, and Akihito Ishizaki
Phys. Rev. Research 7, 013323 (2025) - Published 27 March, 2025
S. S. Islam, V. Sazgari, C. Witteveen, J. N. Graham, O. Gerguri, P. Král, M. Bartkowiak, H. Luetkens, R. Khasanov, F. O. von Rohr, and Z. Guguchia
Phys. Rev. Research 7, 013324 (2025) - Published 28 March, 2025
Karin Sim, Nicolò Defenu, Paolo Molignini, and R. Chitra
Phys. Rev. Research 7, 013325 (2025) - Published 28 March, 2025
Alexander Felski and Flore K. Kunst
Phys. Rev. Research 7, 013326 (2025) - Published 28 March, 2025
Murat Tuğrul and Ulrich K. Steiner
Phys. Rev. Research 7, 013327 (2025) - Published 28 March, 2025
T. M. Kamsma, M. S. Klop, W. Q. Boon, C. Spitoni, B. Rueckauer, and R. van Roij
Phys. Rev. Research 7, 013328 (2025) - Published 31 March, 2025
Takuya Kamijima, Ken Funo, and Takahiro Sagawa
Phys. Rev. Research 7, 013329 (2025) - Published 31 March, 2025
Tom Marzin, Barath Venkateswaran, Thomas Baroux, and P.-T. Brun
Phys. Rev. Research 7, 013330 (2025) - Published 31 March, 2025
Tatsuki Odake, Hlér Kristjánsson, Philip Taranto, and Mio Murao
Phys. Rev. Research 7, 013331 (2025) - Published 31 March, 2025
Xiao-Dong Bai, Tianhong Xu, Jian Li, Yong-Kai Liu, Yujia Zhao, and Jincui Zhao
Phys. Rev. Research 7, 013332 (2025) - Published 31 March, 2025
H. P. Bartling, N. Demetriou, N. C. F. Zutt, D. Kwiatkowski, M. J. Degen, S. J. H. Loenen, C. E. Bradley, M. Markham, D. J. Twitchen, and T. H. Taminiau
Phys. Rev. Research 7, 013333 (2025) - Published 31 March, 2025
Xuanqiang Zhao, Lei Zhang, Benchi Zhao, and Xin Wang
Phys. Rev. Research 7, 013334 (2025) - Published 31 March, 2025
Riccardo Catena, Timon Emken, Nicola A. Spaldin, and Walter Tarantino
Phys. Rev. Research 7, 019001 (2025) - Published 9 January, 2025
Tatsuki Sonoyama, Kazuma Takahashi, Baramee Charoensombutamon, Sachiko Takasu, Kaori Hattori, Daiji Fukuda, Kosuke Fukui, Kan Takase, Warit Asavanant, Jun-ichi Yoshikawa, Mamoru Endo, and Akira Furusawa
Phys. Rev. Research 7, 019002 (2025) - Published 28 January, 2025