Energy transfer between localized emitters in photonic cavities from first principles
Swarnabha Chattaraj and Giulia Galli
Phys. Rev. Research 7, 033229 (2025) - Published 9 September, 2025
Takuya Kawabata, Kosuke Shimura, Yuto Ishii, Minatsu Koike, Kentaro Yoshida, Shu Yonehara, Kohei Yokoi, Alaska Subedi, Kamran Behnia, and Yo Machida
Phys. Rev. Research 7, 033017 (2025) - Published 7 July, 2025
Experiments scanning a temperature window spread over 4 orders of magnitude find that thermal conductivity in sapphire peaks to 35 000 W/Km. This amplitude occurs at a temperature that marks the boundary between Ziman and Poiseuille hydrodynamic regimes. Such a large magnitude in the presence of natural isotopic impurity distinguishes sapphire from other simpler solids in which dimensionless thermal conductivity displays a universal scaling with isotopic impurity.
Michael Meixner, Marcel Krämer, Nils Wentzell, Pietro M. Bonetti, Sabine Andergassen, Alessandro Toschi, and Thomas Schäfer
Phys. Rev. Research 7, 033073 (2025) - Published 18 July, 2025
The mutual Coulomb interaction between electrons may cause a gap in the spectral function via different effective channels, such as spin, charge, or pairing fluctuations. This work clarifies that an effective dynamic nearest-neighbor spin boson causes the Mott metal-insulator transition in the two-dimensional Hubbard model. This cellular dynamical mean-field theory study analyzes the impact of the fermion-boson coupling vertex on the fermionic spectrum for different physical channels, an approach dubbed real-space fluctuation diagnostics.
Daniel Boyanovsky
Phys. Rev. Research 7, 033164 (2025) - Published 18 August, 2025
Synthetic axions, excitations in topological materials, and the cosmological axion, a compelling dark matter candidate, both couple to two-photon states with a Chern-Simons interaction. The common two-photon intermediate state hybridizes the two excitations and displays quantum beats from interference accessible via intensity interferometry, thereby harnessing synthetic axions to probe the cosmological candidate.
Scott Moroch, Carolyn Chun, Doug VanDerwerken, Ariana Shearin, Brian L. Beaudoin, Klaus Blaum, and Timothy W. Koeth
Phys. Rev. Research 7, 033226 (2025) - Published 5 September, 2025
A technique is introduced to measure the half-life of highly charged radioactive ions using nondestructive nuclear recoil detection in a cryogenic Penning trap. Simulations and statistical analyses are performed for Be, which plays a critical role in stellar evolution and the production of solar neutrinos.
Haruka Hitomi and Ko Okumura
Phys. Rev. Research 7, L032019 (2025) - Published 18 July, 2025
Continuous generation of bubbles is achieved in a confined space by a simple experimental setup, leading to substantial physics content. The convincing agreement between experiment and theory elucidates the dominant viscous force competing with buoyancy, while yet another viscous force plays a vital role for replacing in confined geometry the conventional pinch-off mechanism of Tate, proposed in 1864, in which buoyancy competes with capillarity.
Ioannis Kiorpelidis and Konstantinos G. Makris
Phys. Rev. Research 7, L032043 (2025) - Published 22 August, 2025
Lattices with asymmetric couplings have ultrastrong non-normality and thus exhibit exponential sensitivity and directed topological amplification. An analysis shows that the scaling laws of the associated pseudospectra determine the underlying physics of these effects and provide a unified framework for spectral and dynamical exponential sensitivity.
Yi Tan, Brenden Roberts, Nathanan Tantivasadakarn, Beni Yoshida, and Norman Y. Yao
Phys. Rev. Research 7, L032062 (2025) - Published 22 September, 2025
A systematic expansion of topological fracton order to settings without lattice translation invariance is shown via the hypergraph product. Using this construction, a geometrically local but noncrystalline Type-II fracton model on an aperiodic tiling is conjectured to confine point particle excitations.
Yicheng Feng, Sergei A. Voloshin, and Fuqiang Wang
Phys. Rev. Research 7, 031001 (2025) - Published 9 July, 2025
The chiral magnetic effect is one of the most intriguing and important physics in quantum chromodynamics. This Perspective provides a comprehensive and rigorous review of the latest experimental progress in the search for the chiral magnetic effect in relativistic heavy-ion collisions.
Anaïs Abramian, Suzie Protière, Arnaud Lazarus, and Olivier Devauchelle
Phys. Rev. Research 7, L032001 (2025) - Published 1 July, 2025
A mechanism for the formation of Chladni patterns is proposed. When a grain bounces on a vibrated membrane, it behaves as a random walker, whose diffusivity increases with the local amplitude of vibration. This provides a simple framework for understanding the collective dynamics of bouncing grains.
Marco Cattaneo, Marco Baldovin, Dario Lucente, Paolo Muratore-Ginanneschi, and Angelo Vulpiani
Phys. Rev. Research 7, L032002 (2025) - Published 2 July, 2025
A study shows that in generic large quadratic systems with many degrees of freedom—both classical and quantum—almost all states in the microcanonical energy shell exhibit thermal behavior when observables involving many normal modes are considered. Moreover, the work demonstrates that the energies of a random rotation of the normal modes approach equipartition for typical initial conditions, even though the model possesses an extensive number of conserved quantities.
David Cui, Arthur Mehta, and Denis Rochette
Phys. Rev. Research 7, L032003 (2025) - Published 7 July, 2025
This work presents a general method for extending Bell monogamy relations to arbitrary multiplayer configurations and explicitly characterizes scenarios in which quantum nonlocality can arise. It also identifies novel multipartite Bell monogamy constraints and provides an example of a nonlocal game that remains unaffected by monogamy constraints.
Dennis P. Clougherty and Nam H. Dinh
Phys. Rev. Research 7, L032004 (2025) - Published 7 July, 2025
An exact solution to the dissipative quantum dynamics of a nanomechanical system is found by employing a multimode Bogoliubov transformation. The ground state is always a multimode squeezed-vacuum state whose displacement uncertainty is reduced with increasing damping.
Dongxiao Fan, Tomoki Kanazawa, Rie Haruki, Youngmin Kim, and Shunsuke Nozawa
Phys. Rev. Research 7, L032005 (2025) - Published 7 July, 2025
Local structural changes associated with polar nanoregions in Sn-doped BaTiO relaxor ferroelectrics are investigated by Ti -edge XANES spectroscopy.
Federica Ferretti, Irene Giardina, Tomas Grigera, Giulia Pisegna, and Mario Veca
Phys. Rev. Research 7, L032006 (2025) - Published 7 July, 2025
How directional perturbations affect the response of flocking systems is investigated, and the fluctuation-dissipation relation is found to be violated at all scales, with maximum effect at the ordering transition. By linking these violations to the entropy production, the study reveals how local activity and cooperative interactions drive global out-of-equilibrium responses, shedding light on the energetic costs of collective behavior in natural systems.
Francesc Sabater, Abel Rojo-Francás, Grigori E. Astrakharchik, and Bruno Juliá-Díaz
Phys. Rev. Research 7, L032007 (2025) - Published 7 July, 2025
This work shows that the ground state of the fermionic Tonks-Girardeau gas can be described as a number-conserving Bardeen-Cooper-Schrieffer state. The corresponding second-quantized wave function is constructed using natural orbitals and exact coefficients for pairing detection under arbitrary external potentials are provided.
Sammy Ayoubi, João V. Fontana, Anne Juel, and Alice B. Thompson
Phys. Rev. Research 7, L032008 (2025) - Published 8 July, 2025
Noninvasive control of laboratory dynamical systems using control-based continuation (CBC) enables tracking of unstable equilibria experimentally without the need for a mathematical model. By controlling the shape and position of a bubble in flow, this study uses the test bed of fluid dynamics to extend the scope of CBC to spatially extended complex systems.
Daniele Bertacca, Raul Jimenez, Sabino Matarrese, and Angelo Ricciardone
Phys. Rev. Research 7, L032010 (2025) - Published 8 July, 2025
A novel mechanism of inflation is proposed where, starting only from a preexisting de Sitter background, no scalar fields are present, and density perturbations arise from the nonlinear evolution of gravitational waves, which unavoidably arise as quantum vacuum oscillations of the metric. This model-free picture of the early Universe gives concrete predictions that can be tested against cosmological observations.
Aimé Matheron, Igor Andriyash, Xavier Davoine, Laurent Gremillet, Mattys Pouyez, Mickael Grech, Livia Lancia, Kim Ta Phuoc, and Sébastien Corde
Phys. Rev. Research 7, L032011 (2025) - Published 8 July, 2025
This work explores a concept combining a laser-plasma accelerator, a laser intensity booster, and a plasma mirror, which enables reaching strong-field quantum electrodynamics with electric fields reaching up to 5 times the Schwinger critical field in the rest frame of an electron beam.
Zhen Zhao, Emil Östberg, Ferdi Aryasetiawan, and Claudio Verdozzi
Phys. Rev. Research 7, L032012 (2025) - Published 10 July, 2025
A theoretical scheme is presented to describe quantum skyrmions in contact with electronic reservoirs. Calculations of the ground-state and dynamical properties of the system are performed, with the spin-electron exchange approximated at the mean-field level. The effect of itinerant electrons on the properties of quantum nanoskyrmions is demonstrated. Numerical results show that the approach has an advantage over classical or mean-field treatments of local spins in a broad range of physical parameters.
Sanjana Kamath, Laurent Talon, Meera Ramaswamy, Christopher A. Browne, and Sujit S. Datta
Phys. Rev. Research 7, L032013 (2025) - Published 11 July, 2025
Event-driven pore network modeling of hydrogel particles moving in disordered porous media helps to identify a dimensionless “squeezing parameter” that quantitatively predicts particle penetration depth across diverse conditions. It also reveals, counterintuitively, that increasing particle concentration enhances penetration through cooperative effects, where individual particles redirect fluid flow to help nearby particles squeeze through tight pores that would otherwise cause clogging.
Kaiwen Chen, Xiangqi Liu, Ying Wang, Jiyuan Han, Ziyi Zhu, Jiachen Jiao, Chengyu Jiang, Yanfeng Guo, Changlin Zheng, and Lei Shu
Phys. Rev. Research 7, L032014 (2025) - Published 15 July, 2025
A SR study investigates the magnetic ground state of Pr-doped LaPrNiO and oxygen-deficient LaNiO polycrystals. This research confirms that Pr doping does not significantly alter the microscopic magnetism of LaNiO and reveals the destructive effect of apical-oxygen deficiencies on both intraplane and interplane magnetic correlation.
Yifan Sun, Pedro Parra-Rivas, Francois Leo, Carles Milián, and Stefan Wabnitz
Phys. Rev. Research 7, L032015 (2025) - Published 15 July, 2025
How dimensionality affects the existence and stability of radially symmetric Kerr cavity solitons in damped-driven nonlinear systems is systematically explored, revealing increased instability with higher dimensions.
Dario Fiore Mosca and Leonid V. Pourovskii
Phys. Rev. Research 7, L032016 (2025) - Published 15 July, 2025
An antiferroic order of magnetic octupoles in the 5 double perovskite SrMgReO stabilized by a dominant tetragonal crystal field is uncovered. Characteristic signatures of this order in neutron-scattering experiments are predicted, providing insights into hidden multipolar phases in spin-orbit coupled systems.
Kushagra Aggarwal, Alberto Rolandi, Yikai Yang, Joseph Hickie, Daniel Jirovec, Andrea Ballabio, Daniel Chrastina, Giovanni Isella, Mark T. Mitchison, Martí Perarnau-Llobet, and Natalia Ares
Phys. Rev. Research 7, L032017 (2025) - Published 15 July, 2025
The realization and optimization of an information engine that allows work to be extracted from the measurement of thermal fluctuations is studied. The optimization enables maximal work extraction and maximal efficiency at any driving speed and is realized in a quantum-dot system.
C. R. Cabrera, R. Henke, L. Broers, J. Skulte, H. P. Ojeda Collado, H. Biss, L. Mathey, and H. Moritz
Phys. Rev. Research 7, L032018 (2025) - Published 17 July, 2025
This work reveals how confinement affects fundamental excitations in a fermionic superfluid. In particular, the hybridization of the amplitude mode with a spatial breathing mode of the condensed part across the BCS-BEC crossover is observed.
Haruka Hitomi and Ko Okumura
Phys. Rev. Research 7, L032019 (2025) - Published 18 July, 2025
Continuous generation of bubbles is achieved in a confined space by a simple experimental setup, leading to substantial physics content. The convincing agreement between experiment and theory elucidates the dominant viscous force competing with buoyancy, while yet another viscous force plays a vital role for replacing in confined geometry the conventional pinch-off mechanism of Tate, proposed in 1864, in which buoyancy competes with capillarity.
Ron Vatash and Yael Roichman
Phys. Rev. Research 7, L032020 (2025) - Published 24 July, 2025
Experiments and simulations are combined to explore how interparticle interactions shape the steady-state distribution of six colloidal particles under finite-time stochastic resetting. Pronounced competing effects of hard-core repulsion and hydrodynamic interactions appear when particles are reset one at a time.
Meng Zeng, Shu Mo, Ke Zhang, Yu-Jie Hao, Yu-Peng Zhu, Xiang-Rui Liu, Cheng Zhang, Ming-Yuan Zhu, Shiv Kumar, Takuma Iwata, Koji Miyamoto, Taichi Okuda, Kenya Shimada, Kenta Kuroda, Xiao-Ming Ma, and Chang Liu
Phys. Rev. Research 7, L032021 (2025) - Published 24 July, 2025
The spin texture of the antimony-doped magnetic topological insulator MnBiTe, a promising platform for realizing the quantum anomalous Hall effect, is investigated. Using spin-resolved and circular-dichroism ARPES, this work reveals evidence of time-reversal symmetry breaking and uncovers a distinctive hedgehog-like spin texture in the system.
Xiaoyu Liu, Johannes Knörzer, Zherui Jerry Wang, and Jordi Tura
Phys. Rev. Research 7, L032022 (2025) - Published 25 July, 2025
A family of multipartite entanglement measures, generalized concentratable entanglement (GCE), is proposed and shown to be efficiently estimable using parallelized permutation tests across multiple state copies. GCE exhibits a natural correspondence to quantum Tsallis entropies, and a related entropic inequality is conjectured.
L. B. Ramirez-Moya, M. Diaz-Zuniga, M. G. Clerc, and P. J. Aguilera-Rojas
Phys. Rev. Research 7, L032023 (2025) - Published 1 August, 2025
A nonlinear wave failure front velocity is caused by nonreciprocal coupling, which leads to the front connecting two states to no longer propagate. To perform experimental studies of nonlinear wave propagation between two nonreciprocally coupled equilibrium states, a liquid crystal valve with optical back-injection is used.
Shuying Wang, Jixi Lu, Kaixuan Zhang, Le Zhao, Yibo Qi, and Jiancheng Fang
Phys. Rev. Research 7, L032024 (2025) - Published 1 August, 2025
A longitudinal sensitivity of 16 fT/√Hz in a zero-field atomic magnetometer is demonstrated, overcoming its inherent dead zone using weak parametric modulation to amplify field response and suppress spin-exchange relaxation.
Connor Roberts, Ziluo Zhang, Helder Rojas, Stefano Bo, Carlos Escudero, Sébastien Guenneau, and Gunnar Pruessner
Phys. Rev. Research 7, L032025 (2025) - Published 4 August, 2025
Stochastic cloaking is the concealment of a region from diffusing particles governed by Langevin dynamics. The cloak is derived via a coordinate transformation that maps uniform diffusion to an annular layer of spatially varying diffusivity. Simulations reveal that cloaking performance depends on the stochastic interpretation, with the Itô convention achieving near-perfect cloaking.
Paolo Molignini
Phys. Rev. Research 7, L032026 (2025) - Published 5 August, 2025
The dynamics of ultracold fermions in one-dimensional quasiperiodic optical lattices under dipolar interactions is investigated, revealing that long-range interactions stabilize a coexistence phase of localized and extended states and can induce disorder-free localization even in fully periodic setups.
Bei Xu, Fan Yang, Ran Qi, Hui Zhai, and Peng Zhang
Phys. Rev. Research 7, L032027 (2025) - Published 7 August, 2025
Recently, microwave-shielded polar molecules have been cooled to reach quantum degeneracy. A novel type of mutual gauge field emerges in the gas of such molecules, where each molecule experiences a synthetic magnetic field produced by other molecules, as if a solenoid were attached to it, pointing to novel quantum many-body physics.
Hao Xie, Saburo Howard, and Guglielmo Mazzola
Phys. Rev. Research 7, L032028 (2025) - Published 7 August, 2025
A new equation of state of dense hydrogen over a broad range of conditions relevant to the interiors of giant planets, such as Jupiter and Saturn, is presented. The accuracy of the resulting entropy data is guaranteed by stitching together free energy surfaces from various phase regions in an inherently thermodynamically consistent way. This aspect has been shown to be the dominant source of error behind the discrepancies among widely used equation-of-state models over the past decade.
Ya-Chu Chan, Lee R. Liu, Andrew Scheck, David J. Nesbitt, Jun Ye, and Dina Rosenberg
Phys. Rev. Research 7, L032029 (2025) - Published 7 August, 2025
Cooling of gas-phase C to 30 K is reported, enabling observation of low- ( < 30) rovibrational transitions in the 8.4 μm band. The wave-function exchange symmetry of 60 identical bosonic nuclei leads to the absence of 15 lines, resulting in a rigorous test of Bose statistics.
Sebastian Hell, Julian Späthe, Morten Førre, Robert Klas, Jan Rothhardt, Jens Limpert, Robert Moshammer, Christian Ott, Gerhard G. Paulus, Stephan Fritzsche, and Matthias Kübel
Phys. Rev. Research 7, L032030 (2025) - Published 8 August, 2025
Using a high-harmonic generation light source, argon is doubly ionized by absorption of two photons around 26.5 eV. The measured photoelectron spectra reveal strong electron-electron interaction in the dominant pathway, which involves the excitation and prompt ionization of an autoionizing resonance.
M. E. Choi, C. M. Pluchar, W. He, S. Guha, and D. J. Wilson
Phys. Rev. Research 7, L032031 (2025) - Published 8 August, 2025
Spatial mode demultiplexing (SPADE) is a powerful, next-generation imaging tool. This work shows how SPADE can be used to readout a nanomechanical resonator with near-ideal quantum efficiency, opening the door to a new class of multimode optomechanical sensors.
Daniel Spasic-Mlacak and Nigel R. Cooper
Phys. Rev. Research 7, L032032 (2025) - Published 12 August, 2025
This work determines theoretically what information can be extracted from current-density correlations of many-body states formed in Landau levels or in vortexable Aharonov-Casher bands. It shows that measurements of such correlations can reveal the system’s interaction energy, offering a new probe of many-body structure in quantum simulators.
Laurent H. A. Simons, Ralf Klemt, Tilman Pfau, Michiel Wouters, and Jacques Tempere
Phys. Rev. Research 7, L032033 (2025) - Published 13 August, 2025
This article studies the optical response of an impurity embedded in a dipolar supersolid. The authors observe several distinct features and postulate that these can be used as signatures of supersolid excitations.
Leonardo A. Crespo Parraga, Itai Einav, and François Guillard
Phys. Rev. Research 7, L032034 (2025) - Published 13 August, 2025
Ever wondered what breakfast cereals, salt, sand, and ice may have in common? Under the right conditions, they can all undergo creep-quake cycles—recurring sudden collapses following slow buildups. Through hands-on experiments and a simple theoretical model, this work explains the shared physics of this behavior across diverse porous materials.
Yen-An Shih, Wan-Guan Chang, Gelo Noel M. Tabia, Hao-Cheng Weng, Tsung-Ying Tsai, Chih-Sung Chuu, Huan-Yu Ku, and Costantino Budroni
Phys. Rev. Research 7, L032035 (2025) - Published 13 August, 2025
Enhanced discrimination of high-dimensional quantum subchannels via optimal local filtering, guided by semidefinite programming, is demonstrated in a one-sided device-independent photonic experiment. The method is theoretically capable of achieving a perfect success probability.
R. Esteban Goetz, Alexander Blech, Corbin Allison, Christiane P. Koch, and Loren Greenman
Phys. Rev. Research 7, L032036 (2025) - Published 14 August, 2025
Coherent control of photoelectron circular dichroism, a chiral-sensitive observable obtained upon photoionization of chiral molecules in the gas phase, is shown to be readily realized by shining an XUV frequency comb together with an IR field onto the molecular ensemble. The delay between the two fields controls the strength of the chiral observable, and adjusting the polarization directions of the two fields allows for separating chiral signatures from the bound and continuum part of the electronic spectrum.
Corinne Steiner, Rebecca Rahmel, Frank Volmer, Rika Windisch, Lars H. Janssen, Patricia Pesch, Kenji Watanabe, Takashi Taniguchi, Florian Libisch, Bernd Beschoten, Christoph Stampfer, and Annika Kurzmann
Phys. Rev. Research 7, L032037 (2025) - Published 19 August, 2025
This article presents photoluminiscence measurements of vacancy-related emitters in hexagonal boron nitride (hBN) gated via few-layer graphene electrodes, and show a gate-dependent brightening of the emitter and a dependence of the brightness with the intensity of the laser used to induce the excitation.
Justin Lien and Hiroyasu Ando
Phys. Rev. Research 7, L032038 (2025) - Published 20 August, 2025
A correlation-based framework is presented for stochastic modeling and parameter estimation in dynamical systems subject to additive persistent noise. Its effectiveness is demonstrated through applications to the ideal Lorenz 63 system and real-world El Niño-Southern Oscillation data.
Ye Zhang and Duanduan Wan
Phys. Rev. Research 7, L032040 (2025) - Published 21 August, 2025
Cyclic transitions between active and passive states are central to many natural and synthetic systems—from light-driven active particles to animal migrations. This work investigates a minimal model of self-propelled Brownian particles undergoing such transitions, showing that the state-switching time varies nonmonotonically with particle number and that an emergent clustering phenomenon appears above a threshold value.
Wout Laeremans and Wouter G. Ellenbroek
Phys. Rev. Research 7, L032041 (2025) - Published 22 August, 2025
The looping time of DNA under tension is studied by comparing theoretical models with simulations and experimental data. A model is introduced in which the looping time scales inversely with the equilibrium looping probability and which matches simulation results for long semiflexible chains.
Yu-Bo Hou, Xiaoan Ai, Ruizhe You, and Changchun Zhong
Phys. Rev. Research 7, L032042 (2025) - Published 22 August, 2025
While environmental noise typically degrades the performance of quantum transducers, it is demonstrated that exploiting noise correlations allows a practical transducer with tunable coupling phase to benefit from such correlated noise.
Ioannis Kiorpelidis and Konstantinos G. Makris
Phys. Rev. Research 7, L032043 (2025) - Published 22 August, 2025
Lattices with asymmetric couplings have ultrastrong non-normality and thus exhibit exponential sensitivity and directed topological amplification. An analysis shows that the scaling laws of the associated pseudospectra determine the underlying physics of these effects and provide a unified framework for spectral and dynamical exponential sensitivity.
A. B. Steinberg, F. Maucher, S. V. Gurevich, and U. Thiele
Phys. Rev. Research 7, L032044 (2025) - Published 22 August, 2025
The existence of localized states in tubular dipolar Bose-Einstein condensates is shown, and their importance for the determination of the order of the occurring phase transition is discussed.
Guanchen Peng, Bryony Lanigan, R. Shah, J. Lim, A. Kaushik, J. P. Cotter, E. A. Hinds, and B. E. Sauer
Phys. Rev. Research 7, L032045 (2025) - Published 25 August, 2025
The sensitivity of an atom interferometer increases with increasing path separation. By combining light and microwave radiation, a way to increase this separation without rapid switching of the effective direction of the light is demonstrated. This technical simplification could lead to interferometers of greater sensitivity.
Pietro Bonfà, Francis Pratt, Diego Valenti, Ifeanyi John Onuorah, Anshu Kataria, Peter J. Baker, Stephen Cottrell, Andrea Capa Salinas, Stephen D. Wilson, Zurab Guguchia, and Samuele Sanna
Phys. Rev. Research 7, L032046 (2025) - Published 2 September, 2025
Charge order in RbVSb is investigated using avoided level crossing μSR under near-zero-field conditions. A combination of experimental and computational approaches reveals an additional charge redistribution within the kagome plane, which accompanies the transition observed in zero-field μSR measurements.
Andrey Yachmenev and Guang Yang
Phys. Rev. Research 7, L032047 (2025) - Published 4 September, 2025
Centrifugal forces can break molecular symmetry at high rotational excitations, an effect known as rotational energy level clustering. In the case of the HS molecule, this is shown to simultaneously break nuclear spin symmetry, leading to strong ortho-para interaction and nuclear spin polarization.
Maximilian Vieweg and Kai Phillip Schmidt
Phys. Rev. Research 7, L032048 (2025) - Published 3 September, 2025
The XY checkerboard toric code is introduced as a generalization of the conventional toric code with two types of star operators and two anisotropic star sublattices forming a checkerboard lattice. The quantum phase diagram is deduced exactly, displaying topological and fracton phases with exotic properties.
Gustavo A. L. Forão, Fernando S. Filho, André P. Vieira, Bart Cleuren, Daniel M. Busiello, and Carlos E. Fiore
Phys. Rev. Research 7, L032049 (2025) - Published 4 September, 2025
In equilibrium many-body systems, a phase transition typically occurs at a single point in parameter space, separating an ordered, broken-symmetry phase from a disordered one. Here, it’s shown that, under the action of multiple heat baths combined with competing nonconservative forces, a nonequilibrium phase transition may be split into two transition points, associated with distinct ordered phases. One of the ordered phases can in principle be used to build a heat engine that is less dissipative, shows reduced fluctuations, and can operate near maximum power and maximum efficiency over a wide parameter range.
Chunchao Wen, Jianfa Zhang, Chaofan Zhang, Shiqiao Qin, Zhihong Zhu, and Wei Liu
Phys. Rev. Research 7, L032050 (2025) - Published 8 September, 2025
With a complementary perspective of steady polarization fields and instantaneous vector fields, it is discovered that radiation patterns without dark directions of zero scattering must have directions of both circular and linear polarizations and that radiation patterns without directions of circular polarizations or linear polarizations must have dark directions.
Dorian Przetakiewicz, Stefan Wessel, and Francesco Parisen Toldin
Phys. Rev. Research 7, L032051 (2025) - Published 8 September, 2025
In a critical system bounded by surfaces, the boundary operator product expansion (BOPE) coefficients describe the expansion of the bulk scaling operator in the vicinity of the surface and represent universal amplitudes of one- and two-point functions. State-of-the-art Monte Carlo simulations are used to extract unbiased, accurate estimates of BOPE coefficients for the fundamental three-dimensional Ising universality class in the presence of a surface, for all known surface universality classes.
Ziming Zhao and Jie Lin
Phys. Rev. Research 7, L032052 (2025) - Published 9 September, 2025
This work models cytoplasm as a soft colloidal suspension with active noise. It’s found that to reproduce the 1/2 frequency scaling of the experimental complex shear moduli, the cytoplasm should be slightly above the jamming transition and be fluidized by active noise. The results suggest that the cell actively regulates volume fraction into this regime, allowing its viscoelastic properties to be sensitively tuned by intracellular active processes.
Martin Kjøllesdal Johnsrud and Ramin Golestanian
Phys. Rev. Research 7, L032053 (2025) - Published 9 September, 2025
Active matter does not follow the fluctuation dissipation theorem of equilibrium systems, as it intrinsically breaks time-reversal symmetry. This work derives fluctuation dissipation relations valid far from equilibrium and investigates the physical consequences of these identities for various active field theories.
Martin Kjøllesdal Johnsrud and Ramin Golestanian
Phys. Rev. Research 7, L032054 (2025) - Published 9 September, 2025
Recently derived exact fluctuation-dissipation relations formally connect the correlation and linear response functions of field theories far from equilibrium. This work develops and applies diagrammatic techniques for evaluating such relations in the context of the nonreciprocal Cahn-Hilliard model of active matter.
Joseph J. Webber and Thomas D. Montenegro-Johnson
Phys. Rev. Research 7, L032055 (2025) - Published 9 September, 2025
Chemically responsive hydrogels coupled with oscillating chemical reactions act like coupled oscillators when the products of the reactions can diffuse between them, swelling and deswelling in predictable patterns as the concentrations evolve in time. External manipulation of the gels can control the rate of these oscillations and facilitate signaling between gels in a manner akin to intracellular communication in biology.
Anton Bölian, Phatthamon Kongkhambut, Christoph Georges, Roy D. Jara, Jr., José Vargas, Jens Klinder, Jayson G. Cosme, Hans Keßler, and Andreas Hemmerich
Phys. Rev. Research 7, L032056 (2025) - Published 10 September, 2025
Using an atom-cavity platform operating in the regime of ultralow dissipation, an experiment has observed a quasiparticle composed of light and matter—a polariton—with zero excitation energy at a pump strength well below the critical value of the system’s phase transition point. Hence, this polariton can be excited with zero energy cost, while the system remains stable.
Mengke Li, Matthew Mumpower, Nicole Vassh, William Samuel Porter, and Rebecca Surman
Phys. Rev. Research 7, L032057 (2025) - Published 11 September, 2025
Extrapolating mass models to unstable regions of the nuclear chart remains a key challenge in nuclear physics. Though the majority of these unstable species have yet to be measured in the laboratory, they are accessed in nature through the rapid neutron capture process of nucleosynthesis. Here a multiobjective optimization strategy is introduced that leverages astrophysical -process abundances to guide machine learning models, enabling more reliable mass predictions for exotic nuclei.
Tempei Kabayama, Motomasa Komuro, Yasuo Kuniyoshi, Kazuyuki Aihara, and Kohei Nakajima
Phys. Rev. Research 7, L032058 (2025) - Published 12 September, 2025
This study analyzes symmetric models to show that adjusting a global parameter in random neural networks—which develop multistability through reservoir computing—induces a crisis with intermittency.
Daimu Ikeya, Hikaru Fujise, Minami Takahashi, Kyoichiro Yasui, Akitaka Matsuda, Mizuho Fushitani, Hirokazu Matsui, Hiroka Hasegawa, Oleg I. Tolstikhin, Toru Morishita, and Akiyoshi Hishikawa
Phys. Rev. Research 7, L032059 (2025) - Published 12 September, 2025
A quantitative decoding of strong-field ionization of H from its photoelectron momentum torus is demonstrated, providing a precise and robust framework for extracting molecular ionization potentials and laser field parameters directly from the photoelectron momentum distribution.
Zhan Cao, Yang Feng, Zhi-Hai Liu, and Ke He
Phys. Rev. Research 7, L032060 (2025) - Published 17 September, 2025
Laughlin charge pumping arising from the interplay between chiral Dirac and chiral Majorana modes is investigated, predicting fractional pumping features with topological origins that reflect the charge-neutral and zero-momentum character of zero-energy chiral Majorana modes.
A. Geyer, J. Stindl, I. Dwojak, M. Hofmann, N. Anders, P. Roth, P. Daum, J. Kruse, S. Jacob, S. Gurevich, N. Wong, M. S. Schöffler, L. Ph. H. Schmidt, T. Jahnke, M. Kunitski, R. Dörner, and S. Eckart
Phys. Rev. Research 7, L032061 (2025) - Published 18 September, 2025
A scheme for the synthetization of a three-dimensional laser field for the strong-field ionization of atoms is presented. Despite the spatial dependence of the field, only a small region of the focal volume contributes to the ionization process. For suitable laser parameters, this results in a volume-averaged electron momentum distribution that is chiral.
Yi Tan, Brenden Roberts, Nathanan Tantivasadakarn, Beni Yoshida, and Norman Y. Yao
Phys. Rev. Research 7, L032062 (2025) - Published 22 September, 2025
A systematic expansion of topological fracton order to settings without lattice translation invariance is shown via the hypergraph product. Using this construction, a geometrically local but noncrystalline Type-II fracton model on an aperiodic tiling is conjectured to confine point particle excitations.
C. Aparajit, Anandam Choudhary, Ankit Dulat, Mickael Grech, Samuel Marini, Amit D. Lad, Yash M. Ved, Michèle Raynaud, Caterina Riconda, and G. Ravindra Kumar
Phys. Rev. Research 7, L032063 (2025) - Published 22 September, 2025
Second-harmonic generation is an effective approach to enhance the laser contrast in the nanosecond and picosecond range; however, a femtosecond-scale structure in the rising edge persists. It is experimentally and theoretically demonstrated that the presence of this structure critically modifies the fundamental surface interactions of such pulses with flat and sub-λ grating solid targets.
N. Peskosky, N. P. Ernst, M. Burger, J. Murphy, J. Nees, I. Jovanovic, A. G. R. Thomas, and K. Krushelnick
Phys. Rev. Research 7, L032064 (2025) - Published 22 September, 2025
Employing high-intensity optical vortex rings, this work experimentally demonstrates enhanced laser absorption and fast neutron generation when compared to a standard Gaussian pulse. The enhanced laser absorption is associated with the excitation of orbital angular momentum carrying plasma waves during vortex ring pulse filamentation.
Omri Y. Cohen, Yael Klein, and Eran Sharon
Phys. Rev. Research 7, L032065 (2025) - Published 22 September, 2025
The autonomous surfing of curved active gels on a curved fluid-fluid interface is studied experimentally and theoretically, demonstrating locomotion that arises from geometric mismatch. A theoretical model combining incompatible elasticity and capillarity accurately captures the observed trajectories and reveals the generality of this mode of locomotion, which can appear in various biological and mechanical systems.
Yung-Yeh Chang, Kazuma Saito, and Chen-Hsuan Hsu
Phys. Rev. Research 7, L032066 (2025) - Published 22 September, 2025
In twisted bilayer graphene, electrons flowing through domain wall networks interact with localized spins placed on the graphene. This interaction leads to a two-dimensional helical spin pattern, whose collective spin waves scatter the electrons and give rise to an electrically tunable singularity detectable in magnetic resonance and spin response measurements.
Ji-Ho Mun, Eui-Cheol Shin, Jaeuk Seo, and Yong-Hyun Kim
Phys. Rev. Research 7, L032067 (2025) - Published 22 September, 2025
Interfacial heat promotes triboelectric charge transfer through the thermoelectric effect. When the heat-generated triboelectric charges accumulate on sharp surfaces, they generate powerful electrostatic forces, enabling sticky adhesion.
Jan-Philip Joost and Michael Bonitz
Phys. Rev. Research 7, L032068 (2025) - Published 23 September, 2025
Graphene nanostructures can undergo subnanometer, localized, femtosecond electronic excitations, even under spatially uniform light, because of their topology-driven electronic structure. Nonequilibrium Green’s function simulations indicate that by tuning geometry and laser parameters, like photon energy, polarization, and carrier-envelope phase, this effect could enable ultrafast nanoelectronic control and potentially petahertz switching.
Jonathan Sturm and Adriana Pálffy
Phys. Rev. Research 7, L032069 (2025) - Published 26 September, 2025
The orientation of the transition dipole moment strongly influences the dipole-dipole couplings between quantum emitters. This principle is used to actively control the topology of zigzag-shaped Su-Schrieffer-Heeger chains without changing the chain geometry.
Yves H. Kwan, Tixuan Tan, and Trithep Devakul
Phys. Rev. Research 7, L032070 (2025) - Published 29 September, 2025
The fractional Chern mosaic, a state characterized by spatially varying topological order, is introduced, and its relevance for supermoiré platforms such as helical trilayer graphene is demonstrated.
Philip Marszal, Nora Molkenthin, Marc Timme, and Malte Schröder
Phys. Rev. Research 7, L032071 (2025) - Published 29 September, 2025
Routes of ridepooling vehicles constitute a stochastic process that evolves on different timescales. The diffusion dynamics emerging from the underlying routing mechanisms explains scaling laws of ridepooling performance metrics.
Daiqiu Mou and Yuansheng Cao
Phys. Rev. Research 7, 033001 (2025) - Published 1 July, 2025
Ievgen I. Arkhipov, Fabrizio Minganti, and Franco Nori
Phys. Rev. Research 7, 033002 (2025) - Published 1 July, 2025
Gennaro Tucci, Giulia Pisegna, Ramin Golestanian, and Suropriya Saha
Phys. Rev. Research 7, 033003 (2025) - Published 1 July, 2025
Chaviva Sirote-Katz, Ofri Palti, Naomi Spiro, Tamás Kálmán, and Yair Shokef
Phys. Rev. Research 7, 033004 (2025) - Published 1 July, 2025
Chaviva Sirote-Katz, Yotam M. Y. Feldman, Guy Cohen, Tamás Kálmán, and Yair Shokef
Phys. Rev. Research 7, 033005 (2025) - Published 1 July, 2025
Nachiket Karve, Nathan Rose, and David Campbell
Phys. Rev. Research 7, 033006 (2025) - Published 1 July, 2025
Joshua Krauß, Marcos Alberto Gonçalves dos Santos Filho, Francisco Ednilson Alves dos Santos, and Axel Pelster
Phys. Rev. Research 7, 033007 (2025) - Published 1 July, 2025
Alexander P. Antonov, Yuanjian Zheng, Benno Liebchen, and Hartmut Löwen
Phys. Rev. Research 7, 033008 (2025) - Published 1 July, 2025
Davide Cipollini and Lambert Schomaker
Phys. Rev. Research 7, 033009 (2025) - Published 1 July, 2025
Jatin Abacousnac, Wenjun Chen, Jasna Brujic, and David G. Grier
Phys. Rev. Research 7, 033010 (2025) - Published 1 July, 2025
Ryuna Nagayama, Kohei Yoshimura, Artemy Kolchinsky, and Sosuke Ito
Phys. Rev. Research 7, 033011 (2025) - Published 2 July, 2025
Emanuele Gaz, Pavel P. Popov, Guy Pardo, Maciej Lewenstein, Philipp Hauke, and Erez Zohar
Phys. Rev. Research 7, 033012 (2025) - Published 2 July, 2025
James Schneeloch, Erin Sheridan, A. Matthew Smith, Christopher C. Tison, Daniel L. Campbell, Matthew D. LaHaye, Michael L. Fanto, and Paul M. Alsing
Phys. Rev. Research 7, 033013 (2025) - Published 2 July, 2025
Tongyang Li, Yuexin Su, Ziyi Yang, and Shengyu Zhang
Phys. Rev. Research 7, 033014 (2025) - Published 2 July, 2025
Kaiyi Wu, Lucas M. Cohen, Karthik V. Myilswamy, Navin B. Lingaraju, Hsuan-Hao Lu, Joseph M. Lukens, and Andrew M. Weiner
Phys. Rev. Research 7, 033015 (2025) - Published 2 July, 2025
Hannah M. Bellenbaum, Maximilian P. Böhme, Michael Bonitz, Tilo Döppner, Luke B. Fletcher, Thomas Gawne, Dominik Kraus, Zhandos A. Moldabekov, Sebastian Schwalbe, Jan Vorberger, and Tobias Dornheim
Phys. Rev. Research 7, 033016 (2025) - Published 7 July, 2025
Takuya Kawabata, Kosuke Shimura, Yuto Ishii, Minatsu Koike, Kentaro Yoshida, Shu Yonehara, Kohei Yokoi, Alaska Subedi, Kamran Behnia, and Yo Machida
Phys. Rev. Research 7, 033017 (2025) - Published 7 July, 2025
Experiments scanning a temperature window spread over 4 orders of magnitude find that thermal conductivity in sapphire peaks to 35 000 W/Km. This amplitude occurs at a temperature that marks the boundary between Ziman and Poiseuille hydrodynamic regimes. Such a large magnitude in the presence of natural isotopic impurity distinguishes sapphire from other simpler solids in which dimensionless thermal conductivity displays a universal scaling with isotopic impurity.
A. Weisse, R. Gerstner, and J. Sirker
Phys. Rev. Research 7, 033018 (2025) - Published 7 July, 2025
Hidetoshi Masuda, Jun-ichiro Ohe, Yoichi Nii, Shojiro Kimura, and Yoshinori Onose
Phys. Rev. Research 7, 033019 (2025) - Published 7 July, 2025
Harish P. Jain, Richard D. J. G. Ho, and Luiza Angheluta
Phys. Rev. Research 7, 033020 (2025) - Published 7 July, 2025
Jonas Andreas Krieger, Thomas James Hicken, Hubertus Luetkens, Reinhard K. Kremer, and Pascal Puphal
Phys. Rev. Research 7, 033021 (2025) - Published 7 July, 2025
Robert C. Bird and Jeremy M. Hutson
Phys. Rev. Research 7, 033022 (2025) - Published 7 July, 2025
Lauro B. Braz, George B. Martins, and Luis G. G. V. Dias da Silva
Phys. Rev. Research 7, 033023 (2025) - Published 7 July, 2025
Ingo Tews, Rahul Somasundaram, Diego Lonardoni, Hannah Göttling, Rodric Seutin, Joseph Carlson, Stefano Gandolfi, Kai Hebeler, and Achim Schwenk
Phys. Rev. Research 7, 033024 (2025) - Published 7 July, 2025
Dong Qiu, Yuting Zou, Chao Yang, Dongxing Zheng, Chenhui Zhang, Deju Zhang, Yuhang Wu, Gaofeng Rao, Peng Li, Yuqiao Zhou, Xian Jian, Haoran Wei, Zhigang Cheng, Xixiang Zhang, Yanning Zhang, Haiwen Liu, Jingbo Qi, Yanrong Li, and Jie Xiong
Phys. Rev. Research 7, 033025 (2025) - Published 7 July, 2025
Satoshi Iguchi, Hiroki Kobayashi, Yuka Ikemoto, Tetsuya Furukawa, Hirotake Itoh, Shinichiro Iwai, Taro Moriwaki, and Takahiko Sasaki
Phys. Rev. Research 7, 033026 (2025) - Published 7 July, 2025
Ittai Sidilkover, Yun Yen, Sunil Wilfred D'Souza, Jakub Schusser, Aki Pulkkinen, Costel R. Rotundu, Makoto Hashimoto, Donghui Liu, Zhi-Xun Shen, Ján Minár, Michael Schüler, Hadas Soifer, and Jonathan A. Sobota
Phys. Rev. Research 7, 033027 (2025) - Published 7 July, 2025
Ze-Min Huang and Sebastian Diehl
Phys. Rev. Research 7, 033028 (2025) - Published 7 July, 2025
Tatsuki Odake, Philip Taranto, Nobuyuki Yoshioka, Toshinari Itoko, Kunal Sharma, Antonio Mezzacapo, and Mio Murao
Phys. Rev. Research 7, 033029 (2025) - Published 8 July, 2025
Zhi Dou, Liu Hong, Songyuan Cui, Zhengwei Li, Fan Kiat Chan, Yashraj Bhosale, Onur Aydin, Kai-yu Huang, Hyunjoon Kong, Gabriel Juarez, M. Taher A. Saif, Leonardo P. Chamorro, and Mattia Gazzola
Phys. Rev. Research 7, 033030 (2025) - Published 8 July, 2025
Shuhong Liu, Nozomi Akashi, Qingyao Huang, Yasuo Kuniyoshi, and Kohei Nakajima
Phys. Rev. Research 7, 033031 (2025) - Published 8 July, 2025
Ryo Misawa, Markus Kriener, Rinsuke Yamada, Ryota Nakano, Milena Jovanovic, Leslie M. Schoop, and Max Hirschberger
Phys. Rev. Research 7, 033032 (2025) - Published 8 July, 2025
Pawan Khatiwada and Xiao-Feng Qian
Phys. Rev. Research 7, 033033 (2025) - Published 8 July, 2025
Jan Wiersig and Weijian Chen
Phys. Rev. Research 7, 033034 (2025) - Published 8 July, 2025
Pierre Dumond, Jérémy Fensch, Gilles Chabrier, and Etienne Jaupart
Phys. Rev. Research 7, 033035 (2025) - Published 8 July, 2025
Roya Aliakbarisani, M. Ángeles Serrano, and Marián Boguñá
Phys. Rev. Research 7, 033036 (2025) - Published 8 July, 2025
Samuel Napoli, Alberto Mercurio, Daniele Lamberto, Andrea Zappalà, Omar Di Stefano, and Salvatore Savasta
Phys. Rev. Research 7, 033037 (2025) - Published 8 July, 2025
Giacomo Morpurgo, Christophe Berthod, and Thierry Giamarchi
Phys. Rev. Research 7, 033038 (2025) - Published 8 July, 2025
Fatemeh Parastesh, Mahtab Mehrabbeik, Karthikeyan Rajagopal, Sajad Jafari, Matjaž Perc, Charo I. del Genio, and Stefano Boccaletti
Phys. Rev. Research 7, 033039 (2025) - Published 8 July, 2025
Juan C. Petit, Saswati Ganguly, and Matthias Sperl
Phys. Rev. Research 7, 033040 (2025) - Published 8 July, 2025
Tsai-Chen Lee, Jacob L. Beckey, Giacomo Marocco, and Daniel Carney
Phys. Rev. Research 7, 033041 (2025) - Published 8 July, 2025
Rodrigo S. Piera, John B. DeBrota, Matthew B. Weiss, Gabriela B. Lemos, Jailson Sales Araújo, Gabriel H. Aguilar, and Jacques L. Pienaar
Phys. Rev. Research 7, 033042 (2025) - Published 8 July, 2025
Hannes P. Hoeppe, Juan M. Rosselló, Malte Vassholz, Johannes Hagemann, Markus Osterhoff, Thea Engler, Angel Rodriguez-Fernandez, Ulrike Boesenberg, Johannes Möller, Roman Shayduk, Jörg Hallmann, Anders Madsen, Robert Mettin, and Tim Salditt
Phys. Rev. Research 7, 033043 (2025) - Published 10 July, 2025
Jakob Metson
Phys. Rev. Research 7, 033044 (2025) - Published 10 July, 2025
Charo I. del Genio
Phys. Rev. Research 7, 033045 (2025) - Published 10 July, 2025
A. S. L. Ribeiro, R. Schott, C. Reichl, W. Dietsche, and W. Wegscheider
Phys. Rev. Research 7, 033046 (2025) - Published 10 July, 2025
Jan-Niklas Herre, Qiyu Liu, Roman Rausch, Christoph Karrasch, and Dante M. Kennes
Phys. Rev. Research 7, 033047 (2025) - Published 10 July, 2025
Akimoto Nakayama, Kosuke Mitarai, Leonardo Placidi, Takanori Sugimoto, and Keisuke Fujii
Phys. Rev. Research 7, 033048 (2025) - Published 11 July, 2025
Abel Jansma, Pedro A. M. Mediano, and Fernando E. Rosas
Phys. Rev. Research 7, 033049 (2025) - Published 11 July, 2025
Andrés F. Ducuara, Ryo Takakura, Fernando J. Hernandez, and Cristian E. Susa
Phys. Rev. Research 7, 033050 (2025) - Published 11 July, 2025
Léo Monbroussou, Eliott Z. Mamon, Hugo Thomas, Verena Yacoub, Ulysse Chabaud, and Elham Kashefi
Phys. Rev. Research 7, 033051 (2025) - Published 11 July, 2025
Pierre Houzelstein, Peter J. Thomas, Benjamin Lindner, Boris Gutkin, and Alberto Pérez-Cervera
Phys. Rev. Research 7, 033052 (2025) - Published 14 July, 2025
Matthew Wampler and Nigel R. Cooper
Phys. Rev. Research 7, 033053 (2025) - Published 14 July, 2025
Pablo Rosillo-Rodes, Maxi San Miguel, and David Sánchez
Phys. Rev. Research 7, 033054 (2025) - Published 14 July, 2025
Matej Komelj, Vinko Sršan, Kristina Žužek, and Sašo Šturm
Phys. Rev. Research 7, 033055 (2025) - Published 14 July, 2025
Zerong Huang, Kai Yuen Lee, Chun Kit Wong, Liyuan Qiu, Bo Yang, Yangqian Yan, and Dajun Wang
Phys. Rev. Research 7, 033056 (2025) - Published 14 July, 2025
H. Alirezaee, S. Skupin, V. Vaicaitis, A. Demircan, I. Babushkin, Luc Bergé, and U. Morgner
Phys. Rev. Research 7, 033057 (2025) - Published 14 July, 2025
Letizia Catalini, Javier del Pino, Soumya S. Kumar, Vincent Dumont, Gabriel Margiani, Oded Zilberberg, and Alexander Eichler
Phys. Rev. Research 7, 033058 (2025) - Published 14 July, 2025
Andrin Doll, Chennan Wang, Thomas Prokscha, Jan Dreiser, and Zaher Salman
Phys. Rev. Research 7, 033059 (2025) - Published 14 July, 2025
C. G. Feyisa, Cheng-Yu Liu, Muhammad S. Hasan, J. S. You, Huan-Yu Ku, and H. H. Jen
Phys. Rev. Research 7, 033060 (2025) - Published 14 July, 2025
Nicolas Sadoune, Ke Liu, Han Yan, Ludovic D. C. Jaubert, Nic Shannon, and Lode Pollet
Phys. Rev. Research 7, 033061 (2025) - Published 14 July, 2025
Denis A. Kopylov, Christian Offen, Laura Ares, Boris Wembe, Sina Ober-Blöbaum, Torsten Meier, Polina R. Sharapova, and Jan Sperling
Phys. Rev. Research 7, 033062 (2025) - Published 15 July, 2025
Christophe Piveteau, Lukas Schmitt, and David Sutter
Phys. Rev. Research 7, 033063 (2025) - Published 15 July, 2025
Federica Fanelli, Hygor P. M. Melo, Matteo Bruno, and Vittorio Loreto
Phys. Rev. Research 7, 033064 (2025) - Published 17 July, 2025
Dmitri B. Horoshko, Alexander B. Mikhalychev, Fedor Jelezko, and Polina P. Kuzhir
Phys. Rev. Research 7, 033065 (2025) - Published 17 July, 2025
Harald Agelii, Alfredo Bellisario, Carl Caleman, Nicusor Timneanu, and Sebastian Cardoch
Phys. Rev. Research 7, 033066 (2025) - Published 17 July, 2025
Alexander M. Maier, Udo Seifert, and Jann van der Meer
Phys. Rev. Research 7, 033067 (2025) - Published 17 July, 2025
Louis González, Hogyeong Gwak, Bumsoo Han, and Andrew Mugler
Phys. Rev. Research 7, 033068 (2025) - Published 17 July, 2025
E. Flament, N. Ombredane, F. Arrouas, D. Ronco, B. Peaudecerf, D. Sugny, and D. Guéry-Odelin
Phys. Rev. Research 7, 033069 (2025) - Published 16 July, 2025
Xuan Zhao, Yi Xu, Le-Man Kuang, and Jie-Qiao Liao
Phys. Rev. Research 7, 033070 (2025) - Published 17 July, 2025
David Gaspard and Arthur Goetschy
Phys. Rev. Research 7, 033071 (2025) - Published 17 July, 2025
Keiichi Tamai, Tsuyoshi Okubo, Truong Vinh Truong Duy, Naotake Natori, and Synge Todo
Phys. Rev. Research 7, 033072 (2025) - Published 18 July, 2025
Michael Meixner, Marcel Krämer, Nils Wentzell, Pietro M. Bonetti, Sabine Andergassen, Alessandro Toschi, and Thomas Schäfer
Phys. Rev. Research 7, 033073 (2025) - Published 18 July, 2025
The mutual Coulomb interaction between electrons may cause a gap in the spectral function via different effective channels, such as spin, charge, or pairing fluctuations. This work clarifies that an effective dynamic nearest-neighbor spin boson causes the Mott metal-insulator transition in the two-dimensional Hubbard model. This cellular dynamical mean-field theory study analyzes the impact of the fermion-boson coupling vertex on the fermionic spectrum for different physical channels, an approach dubbed real-space fluctuation diagnostics.
Anthony Ryan O'Rourke and Simon Devitt
Phys. Rev. Research 7, 033074 (2025) - Published 18 July, 2025
A. Kovalenko, L. Lachman, T. Pham, K. Singh, O. Číp, J. Fiurášek, L. Slodička, and R. Filip
Phys. Rev. Research 7, 033075 (2025) - Published 18 July, 2025
Omar Nagib and T. G. Walker
Phys. Rev. Research 7, 033076 (2025) - Published 18 July, 2025
Lennart Dabelow and Ralf Eichhorn
Phys. Rev. Research 7, 033077 (2025) - Published 18 July, 2025
Ryotaro Koshoji
Phys. Rev. Research 7, 033078 (2025) - Published 21 July, 2025
Riccardo Falcone and Claudio Conti
Phys. Rev. Research 7, 033079 (2025) - Published 21 July, 2025
J. Sánchez-Baena, G. Pascual, R. Bombín, F. Mazzanti, and J. Boronat
Phys. Rev. Research 7, 033080 (2025) - Published 21 July, 2025
Peng-Lai Gong, Zi-Ye Li, Shu-Hui Wang, Yao-Long Kang, Yu-Han Yang, Chen-Dong Jin, Jiang-Long Wang, Fang Zhang, and Xing-Qiang Shi
Phys. Rev. Research 7, 033081 (2025) - Published 22 July, 2025
Ruizhe Yan, Jie Su, and Jin Wang
Phys. Rev. Research 7, 033082 (2025) - Published 22 July, 2025
Takahiko Makiuchi, Takashi Kikkawa, Thanaporn Sichanugrist, Junki Numata, Masaki Imai, Hiroyuki Chudo, Saburo Takahashi, and Eiji Saitoh
Phys. Rev. Research 7, 033083 (2025) - Published 22 July, 2025
Salil S. Vaidya, Lokesh Muruga, Juliana Caspers, Matthias Krüger, and Clemens Bechinger
Phys. Rev. Research 7, 033084 (2025) - Published 23 July, 2025
Ron Nyström, Nicola Pranzini, and Esko Keski-Vakkuri
Phys. Rev. Research 7, 033085 (2025) - Published 23 July, 2025
Ivanina Ilieva, Carsten Rockstuhl, and Ivan Fernandez-Corbaton
Phys. Rev. Research 7, 033086 (2025) - Published 23 July, 2025
Andrea Somazzi and Diego Garlaschelli
Phys. Rev. Research 7, 033087 (2025) - Published 24 July, 2025
A. Becker, G. M. Koutentakis, and P. Schmelcher
Phys. Rev. Research 7, 033088 (2025) - Published 24 July, 2025
N. Salor-Iguiñiz, J. M. Benlloch-Rodríguez, R. Esteve, V. Álvarez, F. Ballester, R. Gadea, J. Rodríguez, J. F. Toledo, R. Torres-Curado, V. Herrero, C. Romo-Luque, M. Querol, J. Rodríguez-Ponce, S. Teruel-Pardo, R. J. Aliaga, F. Monrabal, P. Ferrario, J. J. Gómez-Cadenas, and M. Rappaport (PETALO Collaboration)
Phys. Rev. Research 7, 033089 (2025) - Published 24 July, 2025
Vladlen Galetsky, Nilesh Vyas, Alberto Comin, and Janis Nötzel
Phys. Rev. Research 7, 033090 (2025) - Published 25 July, 2025
Adrian Stroth, Claudia Draxl, and Santiago Rigamonti
Phys. Rev. Research 7, 033091 (2025) - Published 25 July, 2025
Rostislav Duda, Eric Hyyppä, Olli Mukkula, Vasilii Vadimov, and Mikko Möttönen
Phys. Rev. Research 7, 033092 (2025) - Published 25 July, 2025
Fang Xie, Lei Chen, Yuan Fang, and Qimiao Si
Phys. Rev. Research 7, 033093 (2025) - Published 25 July, 2025
Péter Gurin and Szabolcs Varga
Phys. Rev. Research 7, 033094 (2025) - Published 28 July, 2025
Sergio Britto, Zakari Kujala, Sungyon Lee, and Stefano Gonella
Phys. Rev. Research 7, 033095 (2025) - Published 28 July, 2025
James Schneeloch, Christopher C. Tison, Richard J. Birrittella, Ian Brinkley, Michael L. Fanto, and Paul M. Alsing
Phys. Rev. Research 7, 033096 (2025) - Published 28 July, 2025
Guedong Park, Yong Siah Teo, and Hyunseok Jeong
Phys. Rev. Research 7, 033097 (2025) - Published 28 July, 2025
Hao Zhang and Alex Kamenev
Phys. Rev. Research 7, 033098 (2025) - Published 28 July, 2025
J. C. Tzou
Phys. Rev. Research 7, 033099 (2025) - Published 29 July, 2025
Nikita Guseynov, Xiajie Huang, and Nana Liu
Phys. Rev. Research 7, 033100 (2025) - Published 29 July, 2025
Francisco Correa, Luis Inzunza, and Vít Jakubský
Phys. Rev. Research 7, 033101 (2025) - Published 30 July, 2025
Edward D. Lee and Ernesto Ortega-Díaz
Phys. Rev. Research 7, 033102 (2025) - Published 31 July, 2025
Félix Helluin, Daniela Pinto-Dias, Quentin Fontaine, Sylvain Ravets, Jacqueline Bloch, Anna Minguzzi, and Léonie Canet
Phys. Rev. Research 7, 033103 (2025) - Published 31 July, 2025
Sara Meir, Yuval Tamir, Hamootal Duadi, Eliahu Cohen, and Moti Fridman
Phys. Rev. Research 7, 033104 (2025) - Published 31 July, 2025
Federico Gerbino, Guido Giachetti, Pierre Le Doussal, and Andrea De Luca
Phys. Rev. Research 7, 033105 (2025) - Published 31 July, 2025
Wei Zhou, Xinhui Li, Ran Yang, Linrunde Tao, Yi-Chen Liu, Zhenda Xie, Yan-Xiao Gong, and Shi-Ning Zhu
Phys. Rev. Research 7, 033106 (2025) - Published 1 August, 2025
Martin J. A. Schuetz, Ruben S. Andrist, Grant Salton, Romina Yalovetzky, Rudy Raymond, Yue Sun, Atithi Acharya, Shouvanik Chakrabarti, Marco Pistoia, and Helmut G. Katzgraber
Phys. Rev. Research 7, 033107 (2025) - Published 1 August, 2025
Sai Kanth Dacha, René-Jean Essiambre, Alexei Ashikhimin, Andrea Blanco-Redondo, Frank R. Kschischang, Konrad Banaszek, and Yuanhang Zhang
Phys. Rev. Research 7, 033108 (2025) - Published 1 August, 2025
Lasse Gresista, Daniel Lozano-Gómez, Matthias Vojta, Simon Trebst, and Yasir Iqbal
Phys. Rev. Research 7, 033109 (2025) - Published 1 August, 2025
M. Schubert, K. Mukherjee, T. Pfau, and S. M. Reimann
Phys. Rev. Research 7, 033110 (2025) - Published 1 August, 2025
Guus Avis and Stefan Krastanov
Phys. Rev. Research 7, 033111 (2025) - Published 1 August, 2025
Sarah Jährling, Vijay Pal Singh, and Ludwig Mathey
Phys. Rev. Research 7, 033112 (2025) - Published 1 August, 2025
Li Yu and Eric J. Heller
Phys. Rev. Research 7, 033113 (2025) - Published 1 August, 2025
Adrian S. Abazi, Roland Jaha, Connor A. Graham-Scott, Wolfram H. P. Pernice, and Carsten Schuck
Phys. Rev. Research 7, 033114 (2025) - Published 1 August, 2025
Niklas Houba
Phys. Rev. Research 7, 033115 (2025) - Published 1 August, 2025
S. S. Krishtopenko, A. V. Ikonnikov, F. Hartmann, S. Höfling, B. Jouault, and F. Teppe
Phys. Rev. Research 7, 033116 (2025) - Published 4 August, 2025
Tariq Aziz, Meng-Long Song, Liu Ye, Dong Wang, José J. Gil, and Sabre Kais
Phys. Rev. Research 7, 033117 (2025) - Published 4 August, 2025
Han-Xie Wang, Shuai A. Chen, and Peng Ye
Phys. Rev. Research 7, 033118 (2025) - Published 4 August, 2025
D. Martínez, L. Pereira, K. Sawada, P. González, J. Cariñe, M. Muñoz, A. Delgado, E. S. Gómez, S. P. Walborn, and G. Lima
Phys. Rev. Research 7, 033119 (2025) - Published 4 August, 2025
A. Rodin, B. A. Olsen, A. Ustyuzhanin, and A. Maevskiy
Phys. Rev. Research 7, 033120 (2025) - Published 4 August, 2025
Zhenhuan Liu and Fuchuan Wei
Phys. Rev. Research 7, 033121 (2025) - Published 5 August, 2025
Denis A. Kopylov, Michael Stefszky, Torsten Meier, Christine Silberhorn, and Polina R. Sharapova
Phys. Rev. Research 7, 033122 (2025) - Published 5 August, 2025
Arianna Cylke and Shiladitya Banerjee
Phys. Rev. Research 7, 033123 (2025) - Published 6 August, 2025
Oscar Scholin and Theresa W. Lynn
Phys. Rev. Research 7, 033124 (2025) - Published 6 August, 2025
Alessandro Celestini, Francesca Colaiori, Stefano Guarino, Enrico Mastrostefano, Francesca Pelusi, and Lena Rebecca Zastrow
Phys. Rev. Research 7, 033125 (2025) - Published 6 August, 2025
Dorota I. Walicka, Olivier Blacque, Karolina Gornicka, Jonathan S. White, Tomasz Klimczuk, and Fabian O. von Rohr
Phys. Rev. Research 7, 033126 (2025) - Published 6 August, 2025
Mengqi Fu, Orjan Ameye, Fan Yang, Jan Košata, Javier del Pino, Oded Zilberberg, and Elke Scheer
Phys. Rev. Research 7, 033127 (2025) - Published 6 August, 2025
Kaihua Ji, Mingwang Zhong, and Alain Karma
Phys. Rev. Research 7, 033128 (2025) - Published 6 August, 2025
Klée Pollock, Jonathan D. Kroth, Nathan Pagliaroli, Thomas Iadecola, and Jonathon Riddell
Phys. Rev. Research 7, 033129 (2025) - Published 6 August, 2025
Yoshitaka Taira, Yuxuan Yang, Toshiyuki Shizuma, and Mohamed Omer
Phys. Rev. Research 7, 033130 (2025) - Published 7 August, 2025
Suyue Yuan, Kwangnam Kim, Bo Wang, Wonseok Jeong, Tae Wook Heo, Brandon C. Wood, and Liwen F. Wan
Phys. Rev. Research 7, 033131 (2025) - Published 7 August, 2025
Kwang Hyun Cho, Hyukjoon Kwon, and Changbong Hyeon
Phys. Rev. Research 7, 033132 (2025) - Published 8 August, 2025
J. J. Wang, Yubin Zhang, Xiaomin Zhang, and X. X. Yi
Phys. Rev. Research 7, 033133 (2025) - Published 8 August, 2025
Filiberto Ares, Sara Murciano, Pasquale Calabrese, and Lorenzo Piroli
Phys. Rev. Research 7, 033135 (2025) - Published 8 August, 2025
Naushad Ahmad Kamar, Adrian Kantian, and Thierry Giamarchi
Phys. Rev. Research 7, 033136 (2025) - Published 8 August, 2025
Hiroaki Matsueda, Yusuke Masaki, Kanji Itoh, Atsushi Ono, and Joji Nasu
Phys. Rev. Research 7, 033137 (2025) - Published 8 August, 2025
Alex Altland, Francisco Divi, Tobias Micklitz, Silvia Pappalardi, and Maedeh Rezaei
Phys. Rev. Research 7, 033138 (2025) - Published 11 August, 2025
Nepomuk Ritz, Anxiang Ge, Markus Frankenbach, Mathias Pelz, Jan von Delft, and Fabian B. Kugler
Phys. Rev. Research 7, 033139 (2025) - Published 11 August, 2025
Marziyeh Karmand, Mohsen Amini, Morteza Soltani, Ebrahim Ghanbari-Adivi, and Seyed Akbar Jafari
Phys. Rev. Research 7, 033140 (2025) - Published 11 August, 2025
Hironari Nagayoshi, Warit Asavanant, Ryuhoh Ide, Kosuke Fukui, Atsushi Sakaguchi, Jun-ichi Yoshikawa, Nicolas C. Menicucci, and Akira Furusawa
Phys. Rev. Research 7, 033141 (2025) - Published 12 August, 2025
Sanmei He and Jianjin Wang
Phys. Rev. Research 7, 033142 (2025) - Published 11 August, 2025
Daniel Younis, Daniel F. Gordon, and Bahman Hafizi
Phys. Rev. Research 7, 033143 (2025) - Published 11 August, 2025
Yun-Chih Liao, Ben J. Powell, and Thomas M. Stace
Phys. Rev. Research 7, 033144 (2025) - Published 11 August, 2025
Adrianna Kruk, Michał Lesiuk, Krzysztof A. Meissner, and Hermann Nicolai
Phys. Rev. Research 7, 033145 (2025) - Published 13 August, 2025
Jaromír Fiurášek
Phys. Rev. Research 7, 033147 (2025) - Published 13 August, 2025
Ankan Biswas and Avraham Klein
Phys. Rev. Research 7, 033148 (2025) - Published 13 August, 2025
Jonathan Smucker and Jesus Pérez-Ríos
Phys. Rev. Research 7, 033149 (2025) - Published 13 August, 2025
Heng Lin, Jinghui Pi, Yunyao Qi, Wei Qin, Franco Nori, and Gui-Lu Long
Phys. Rev. Research 7, 033150 (2025) - Published 13 August, 2025
Daria S. Roshal, Renaud Lebrun, Kirill Fedorenko, Ivan Golushko, Sergei B. Rochal, and Stephen Baghdiguian
Phys. Rev. Research 7, 033151 (2025) - Published 14 August, 2025
Laura Serino, Giovanni Chesi, Benjamin Brecht, Lorenzo Maccone, Chiara Macchiavello, and Christine Silberhorn
Phys. Rev. Research 7, 033152 (2025) - Published 13 August, 2025
Erenay Karacan, Conor Mc Keever, Michael Foss-Feig, David Hayes, and Michael Lubasch
Phys. Rev. Research 7, 033153 (2025) - Published 14 August, 2025
Zhuonan Lin and Vitaliy Lomakin
Phys. Rev. Research 7, 033154 (2025) - Published 14 August, 2025
Miguel Ibáñez-Berganza, Giulio Bondanelli, and Stefano Panzeri
Phys. Rev. Research 7, 033155 (2025) - Published 14 August, 2025
Elkaïoum M. Moutuou and Habib Benali
Phys. Rev. Research 7, 033156 (2025) - Published 14 August, 2025
Lei Chen, Yang Liu, Liang Bin, Sai-Yun Ye, and Zhi-Rong Zhong
Phys. Rev. Research 7, 033157 (2025) - Published 14 August, 2025
Xinchen Zhang, Nuo Wang, Zhaohua Tian, Qi Liu, and Ying Gu
Phys. Rev. Research 7, 033158 (2025) - Published 14 August, 2025
Takeshi Kimura and Kohtaro Kato
Phys. Rev. Research 7, 033159 (2025) - Published 14 August, 2025
Suman Dolui et al.
Phys. Rev. Research 7, 033161 (2025) - Published 15 August, 2025
Daniel Molpeceres, Sirui Lu, J. Ignacio Cirac, and Barbara Kraus
Phys. Rev. Research 7, 033162 (2025) - Published 15 August, 2025
Emil Viñas Boström, Marios H. Michael, Christian Eckhardt, and Angel Rubio
Phys. Rev. Research 7, 033163 (2025) - Published 15 August, 2025
Daniel Boyanovsky
Phys. Rev. Research 7, 033164 (2025) - Published 18 August, 2025
Synthetic axions, excitations in topological materials, and the cosmological axion, a compelling dark matter candidate, both couple to two-photon states with a Chern-Simons interaction. The common two-photon intermediate state hybridizes the two excitations and displays quantum beats from interference accessible via intensity interferometry, thereby harnessing synthetic axions to probe the cosmological candidate.
Constantin Simovski, Mohammad Sajjad Mirmoosa, Mikhail Sidorenko, and Sergei Tretyakov
Phys. Rev. Research 7, 033165 (2025) - Published 19 August, 2025
Jin Song Ye, Wen Kang Cao, Kai Ping Nie, Sheng He, Kun Hong Li, Qiao Huang, Li Ting Wu, and Jie Hu
Phys. Rev. Research 7, 033166 (2025) - Published 19 August, 2025
Simon Ohler, Daniel Brady, Patrick Mischke, Jana Bender, Herwig Ott, Thomas Niederprüm, Winfried Ripken, Johannes S. Otterbach, and Michael Fleischhauer
Phys. Rev. Research 7, 033167 (2025) - Published 19 August, 2025
Steffen Seligmann and Martin Holthaus
Phys. Rev. Research 7, 033168 (2025) - Published 20 August, 2025
Cornelis Jacobus van Diepen, Vasiliki Angelopoulou, Oliver August Dall'Alba Sandberg, Alexey Tiranov, Ying Wang, Sven Scholz, Arne Ludwig, Anders Søndberg Sørensen, and Peter Lodahl
Phys. Rev. Research 7, 033169 (2025) - Published 20 August, 2025
Amir Sivan and Meir Orenstein
Phys. Rev. Research 7, 033170 (2025) - Published 20 August, 2025
Tiemo Pedergnana and Florian Kogelbauer
Phys. Rev. Research 7, 033171 (2025) - Published 20 August, 2025
Theodore McKeever, Owen Diba, and Ahsan Nazir
Phys. Rev. Research 7, 033172 (2025) - Published 21 August, 2025
A. Bensemhoun, S. Cassina, C. Gonzalez-Arciniegas, M. F. Melalkia, G. Patera, J. Faugier-Tovar, Q. Wilmart, S. Olivier, A. Zavatta, A. Martin, J. Etesse, L. Labonté, O. Pfister, V. D'Auria, and S. Tanzilli
Phys. Rev. Research 7, 033173 (2025) - Published 21 August, 2025
Ruichao Dong et al.
Phys. Rev. Research 7, 033174 (2025) - Published 21 August, 2025
Romain Dalidet, Laurent Labonté, Gregory Sauder, Sébastien Tanzilli, and Anthony Martin
Phys. Rev. Research 7, 033175 (2025) - Published 21 August, 2025
Šimon Bräuer, Tomáš Opatrný, and Petr Marek
Phys. Rev. Research 7, 033176 (2025) - Published 21 August, 2025
Leo de Waal, Matthaios Chouzouris, and Marcelo A. Dias
Phys. Rev. Research 7, 033177 (2025) - Published 21 August, 2025
P. Martin, M. Borghesi, and S. Kar
Phys. Rev. Research 7, 033178 (2025) - Published 21 August, 2025
Tianyi Hao, Zichang He, Ruslan Shaydulin, Jeffrey Larson, and Marco Pistoia
Phys. Rev. Research 7, 033179 (2025) - Published 21 August, 2025
Börge Göbel, Lennart Schimpf, and Ingrid Mertig
Phys. Rev. Research 7, 033180 (2025) - Published 21 August, 2025
Andrei A. Klishin, Joseph Bakarji, J. Nathan Kutz, and Krithika Manohar
Phys. Rev. Research 7, 033181 (2025) - Published 21 August, 2025
Yuxin Liu, Yongqing Li, and Jing Teng
Phys. Rev. Research 7, 033182 (2025) - Published 21 August, 2025
I-Yun Hsiao, Yen-Hsiang Lin, and Yoshiaki Teranishi
Phys. Rev. Research 7, 033183 (2025) - Published 22 August, 2025
Denise Cocchiarella and Mari Carmen Bañuls
Phys. Rev. Research 7, 033184 (2025) - Published 22 August, 2025
Yu-Qin Chen and Shi-Xin Zhang
Phys. Rev. Research 7, 033185 (2025) - Published 22 August, 2025
Nikolai Kaschewski, Axel Pelster, and Carlos A. R. Sá de Melo
Phys. Rev. Research 7, 033186 (2025) - Published 22 August, 2025
Marek Kopciuch and Adam Miranowicz
Phys. Rev. Research 7, 033187 (2025) - Published 22 August, 2025
Hengyuan Ma, Wenlian Lu, and Jianfeng Feng
Phys. Rev. Research 7, 033188 (2025) - Published 22 August, 2025
This work shows that metacognition, awareness of one’s own cognitive accuracy through a sense of uncertainty, emerges spontaneously in recurrent neural networks trained on cognitive tasks. These networks encode response uncertainty via the intrinsic nonlinear coupling between the first and second moments of the neural firing activities, without guidance from explicit probabilistic inference rules.
Elisabeth Gliott, Clara Piekarski, and Nicolas Cherroret
Phys. Rev. Research 7, 033189 (2025) - Published 25 August, 2025
Kamel Ourabah
Phys. Rev. Research 7, 033190 (2025) - Published 25 August, 2025
Yi-Ye Li, Lian-Ao Wu, and Zhao-Ming Wang
Phys. Rev. Research 7, 033191 (2025) - Published 25 August, 2025
Denis V. Kurlov, Melina Luethi, Anatoliy I. Lotkov, Katharina Laubscher, Jelena Klinovaja, and Daniel Loss
Phys. Rev. Research 7, 033192 (2025) - Published 25 August, 2025
Guowei Wayne Tu and Evgueni T. Filipov
Phys. Rev. Research 7, 033193 (2025) - Published 26 August, 2025
Yunlong Xiao, Xiangjing Liu, and Zhenhuan Liu
Phys. Rev. Research 7, 033194 (2025) - Published 26 August, 2025
Han-Lin Liu and J. Wang
Phys. Rev. Research 7, 033195 (2025) - Published 26 August, 2025
Dachuang Shi, Le Zhou, Yixiang Wang, Yanguang Zhou, and Zhigang Li
Phys. Rev. Research 7, 033196 (2025) - Published 27 August, 2025
Marko Toroš, Maria Chiara Braidotti, Swain Ashutosh, Mauro Paternostro, Miles Padgett, and Daniele Faccio
Phys. Rev. Research 7, 033197 (2025) - Published 27 August, 2025
Fei Yan, Robert Konik, and Aditi Mitra
Phys. Rev. Research 7, 033198 (2025) - Published 27 August, 2025
Adam Kinos, Andreas Walther, Stefan Kröll, and Lars Rippe
Phys. Rev. Research 7, 033199 (2025) - Published 28 August, 2025
Masayasu Hata, Chang Liu, James Kevin Koga, Natsumi Iwata, Yasuhiko Sentoku, and Mamiko Nishiuchi
Phys. Rev. Research 7, 033200 (2025) - Published 29 August, 2025
N. A. Zakhleniuk
Phys. Rev. Research 7, 033201 (2025) - Published 29 August, 2025
Alberto Bottarelli, Sebastian Schmitt, and Philipp Hauke
Phys. Rev. Research 7, 033202 (2025) - Published 29 August, 2025
Raphael Holzinger, Oriol Rubies-Bigorda, Susanne F. Yelin, and Helmut Ritsch
Phys. Rev. Research 7, 033203 (2025) - Published 29 August, 2025
Orjan Ameye, Alexander Eichler, and Oded Zilberberg
Phys. Rev. Research 7, 033204 (2025) - Published 29 August, 2025
M. Markowitz, M.-A. Miri, A. Ovchinnikov, and K. Zelaya
Phys. Rev. Research 7, 033205 (2025) - Published 2 September, 2025
Li Zhang, Yongguan Ke, and Chaohong Lee
Phys. Rev. Research 7, 033206 (2025) - Published 2 September, 2025
Wanlin Chen, Marie-Pierre Gaigeot, and Simone Pezzotti
Phys. Rev. Research 7, 033207 (2025) - Published 2 September, 2025
Niklas Cichutek, Peter Kopietz, and Andreas Rückriegel
Phys. Rev. Research 7, 033208 (2025) - Published 2 September, 2025
Vladyslav M. Kuchkin, Unnar B. Arnalds, Hannes Jónsson, and Pavel F. Bessarab
Phys. Rev. Research 7, 033209 (2025) - Published 2 September, 2025
Fernando L. Semião and Matthias Keller
Phys. Rev. Research 7, 033210 (2025) - Published 2 September, 2025
Mohammad Salahshour and Iain D. Couzin
Phys. Rev. Research 7, 033211 (2025) - Published 2 September, 2025
Svetlana Kotochigova, Subhadeep Gupta, and Boris B. Blinov
Phys. Rev. Research 7, 033212 (2025) - Published 2 September, 2025
Kentaro Kaba, Reo Shimizu, Masayuki Ohzeki, and Yuki Sughiyama
Phys. Rev. Research 7, 033213 (2025) - Published 3 September, 2025
Taiki Yoda, Yuto Moritake, Kenta Takata, Kazuki Yokomizo, Shuichi Murakami, and Masaya Notomi
Phys. Rev. Research 7, 033214 (2025) - Published 3 September, 2025
Viqar Husain and Hassan Mehmood
Phys. Rev. Research 7, 033215 (2025) - Published 3 September, 2025
Leon Mixa, Milan Radonjić, Axel Pelster, and Michael Thorwart
Phys. Rev. Research 7, 033216 (2025) - Published 3 September, 2025
Stewart Wallace, Yoann Altmann, Brian D. Gerardot, Erik M. Gauger, and Cristian Bonato
Phys. Rev. Research 7, 033217 (2025) - Published 4 September, 2025
Mauro Bisson, Alexandros Vasilopoulos, Massimo Bernaschi, Massimiliano Fatica, Nikolaos G. Fytas, Isidoro González-Adalid Pemartín, and Víctor Martín-Mayor
Phys. Rev. Research 7, 033218 (2025) - Published 4 September, 2025
Abdelali Sajia and Xiao-Feng Qian
Phys. Rev. Research 7, 033219 (2025) - Published 4 September, 2025
Viktoria Noel, Thomas Gasenzer, and Kirill Boguslavski
Phys. Rev. Research 7, 033220 (2025) - Published 4 September, 2025
Tharnier O. Puel, Adam T. Turflinger, Sebastian P. Horvath, Jeff D. Thompson, and Michael E. Flatté
Phys. Rev. Research 7, 033221 (2025) - Published 4 September, 2025
Jacob Bringewatt, Zach Steffen, Martin A. Ritter, Adam Ehrenberg, Haozhi Wang, B. S. Palmer, Alicia J. Kollár, Alexey V. Gorshkov, and Luis Pedro García-Pintos
Phys. Rev. Research 7, 033222 (2025) - Published 4 September, 2025
David Theidel, Viviane Cotte, Philip Heinzel, Houssna Griguer, Mateusz Weis, René Sondenheimer, and Hamed Merdji
Phys. Rev. Research 7, 033223 (2025) - Published 5 September, 2025
A. R. Khisameeva, A. Shuvaev, A. A. Zabolotnykh, A. S. Astrakhantseva, D. A. Khudaiberdiev, A. Pimenov, I. V. Kukushkin, and V. M. Muravev
Phys. Rev. Research 7, 033224 (2025) - Published 5 September, 2025
Cyrill Bösch, Malte Schade, Giacomo Aloisi, Scott D. Keating, and Andreas Fichtner
Phys. Rev. Research 7, 033225 (2025) - Published 5 September, 2025
Scott Moroch, Carolyn Chun, Doug VanDerwerken, Ariana Shearin, Brian L. Beaudoin, Klaus Blaum, and Timothy W. Koeth
Phys. Rev. Research 7, 033226 (2025) - Published 5 September, 2025
A technique is introduced to measure the half-life of highly charged radioactive ions using nondestructive nuclear recoil detection in a cryogenic Penning trap. Simulations and statistical analyses are performed for Be, which plays a critical role in stellar evolution and the production of solar neutrinos.
Giulia L Celora, Ralf Blossey, Andreas Münch, and Barbara Wagner
Phys. Rev. Research 7, 033227 (2025) - Published 8 September, 2025
Florian Stäbler, Alioune Gadiaga, and Eugene V. Sukhorukov
Phys. Rev. Research 7, 033228 (2025) - Published 9 September, 2025
Swarnabha Chattaraj and Giulia Galli
Phys. Rev. Research 7, 033229 (2025) - Published 9 September, 2025
R. Ikeda, D. Sakai, T. Yamakawa, T. Miyamoto, H. Kishida, T. Hasegawa, and H. Okamoto
Phys. Rev. Research 7, 033230 (2025) - Published 9 September, 2025
Clara Dehman and José A. Pons
Phys. Rev. Research 7, 033231 (2025) - Published 9 September, 2025
Amit Jangid, Keren Erez, Ohad Noy Feldheim, and Tamar Friedlander
Phys. Rev. Research 7, 033232 (2025) - Published 9 September, 2025
Sophie Engineer, Suraj Goel, Sophie Egelhaaf, Will McCutcheon, Vatshal Srivastav, Saroch Leedumrongwatthanakun, Sabine Wollmann, Benjamin D. M. Jones, Thomas Cope, Nicolas Brunner, Roope Uola, and Mehul Malik
Phys. Rev. Research 7, 033233 (2025) - Published 9 September, 2025
Lorenzo Del Re
Phys. Rev. Research 7, 033234 (2025) - Published 10 September, 2025
Ki Young Lee, Stephan Wong, Sachin Vaidya, Terry A. Loring, and Alexander Cerjan
Phys. Rev. Research 7, 033235 (2025) - Published 10 September, 2025
Kazuki Oi and Shimpei Endo
Phys. Rev. Research 7, 033236 (2025) - Published 10 September, 2025
Luke Mortimer, Donato Farina, Grazia Di Bello, David Jansen, Andreas Leitherer, Pere Mujal, and Antonio Acín
Phys. Rev. Research 7, 033237 (2025) - Published 10 September, 2025
Áron Márton, Luis Colmenarez, Lukas Bödeker, and Markus Müller
Phys. Rev. Research 7, 033238 (2025) - Published 10 September, 2025
Valerii K. Kozin, Dmitry Miserev, Daniel Loss, and Jelena Klinovaja
Phys. Rev. Research 7, 033239 (2025) - Published 10 September, 2025
Dimitrios Mataragkas, Alexandros Vasilopoulos, Nikolaos G. Fytas, and Dong-Hee Kim
Phys. Rev. Research 7, 033240 (2025) - Published 10 September, 2025
Bulcsú Sándor, András Rusu, Károly Dénes, Mária Ercsey-Ravasz, and Zsolt I. Lázár
Phys. Rev. Research 7, 033241 (2025) - Published 10 September, 2025
Ievgen I. Arkhipov, Philippe Lewalle, Franco Nori, Şahin K. Özdemir, and K. Birgitta Whaley
Phys. Rev. Research 7, 033242 (2025) - Published 11 September, 2025
Hiroshi Noguchi
Phys. Rev. Research 7, 033243 (2025) - Published 11 September, 2025
Paula Reis and Knut Jørgen Måløy
Phys. Rev. Research 7, 033244 (2025) - Published 12 September, 2025
Honglin Chen, Jicun Li, Wei Xie, and Xiang-Yang Li
Phys. Rev. Research 7, 033245 (2025) - Published 12 September, 2025
Marcus Stålhammar and Lukas Rødland
Phys. Rev. Research 7, 033246 (2025) - Published 12 September, 2025
Omprakash Chandra, Gopikrishnan Muraleedharan, and Gavin K. Brennen
Phys. Rev. Research 7, 033247 (2025) - Published 12 September, 2025
Anqi Li, Upendra Harbola, and Michael Galperin
Phys. Rev. Research 7, 033248 (2025) - Published 12 September, 2025
Giuseppe Magnifico, Maria Maffei, Domenico Pomarico, Debmalya Das, Paolo Facchi, Saverio Pascazio, and Francesco V. Pepe
Phys. Rev. Research 7, 033249 (2025) - Published 15 September, 2025
Rikuto Oiwa and Hiroaki Kusunose
Phys. Rev. Research 7, 033250 (2025) - Published 15 September, 2025
C. N. Kuo, W. S. Tian, H. Y. Lee, C. K. Hong, Y. R. Ou, and C. S. Lue
Phys. Rev. Research 7, 033251 (2025) - Published 15 September, 2025
Sung-Bin B. Lee, Hee Ryang Choi, Daniel Donghyon Ohm, and Seung-Sup B. Lee
Phys. Rev. Research 7, 033252 (2025) - Published 15 September, 2025
F. Impens, F. M. D’Angelis, D. Guéry-Odelin, F. A. Pinheiro, and C. Lewenkopf
Phys. Rev. Research 7, 033253 (2025) - Published 15 September, 2025
Y. Ikegai, Y. Hino, B. Tang, Z. Xu, T. Takagi, and Y. Sasaki
Phys. Rev. Research 7, 033254 (2025) - Published 15 September, 2025
Pablo Moles, Hernán Santos, Francisco Domínguez-Adame, and Leonor Chico
Phys. Rev. Research 7, 033255 (2025) - Published 15 September, 2025
Charlotte Bäcker, Konstantin Beyer, and Walter T. Strunz
Phys. Rev. Research 7, 033256 (2025) - Published 15 September, 2025
Vladimir Gasparian, Peng Guo, Antonio Pérez-Garrido, and Esther Jódar
Phys. Rev. Research 7, 033257 (2025) - Published 15 September, 2025
Yi Shen and Lin Chen
Phys. Rev. Research 7, 033258 (2025) - Published 16 September, 2025
Ludovico Minati, Léandre Kamdjeu Kengne, Michele Castelluzzo, Chiara Masci, Pedro A. Valdes-Sosa, Stefano Boccaletti, Mattia Frasca, and Leonardo Ricci
Phys. Rev. Research 7, 033259 (2025) - Published 17 September, 2025
Jin Cao, Benquan Lu, Xiaotong Lu, and Hong Chang
Phys. Rev. Research 7, 033260 (2025) - Published 17 September, 2025
H. Ness, I. A Leahy, A. D. Rice, D. Pashov, K. Alberi, and M. van Schilfgaarde
Phys. Rev. Research 7, 033261 (2025) - Published 17 September, 2025
Yue Ma, Michael Hanks, Evdokia Gneusheva, and M. S. Kim
Phys. Rev. Research 7, 033262 (2025) - Published 17 September, 2025
E. V. Stolyarov and R. A. Baskov
Phys. Rev. Research 7, 033263 (2025) - Published 17 September, 2025
M. Reitner, L. Del Re, M. Capone, and A. Toschi
Phys. Rev. Research 7, 033264 (2025) - Published 18 September, 2025
C. L. Kirkland and P. J. Sutton
Phys. Rev. Research 7, 033265 (2025) - Published 19 September, 2025
Matthew L. Goh, Martin Larocca, Lukasz Cincio, M. Cerezo, and Frédéric Sauvage
Phys. Rev. Research 7, 033266 (2025) - Published 19 September, 2025
Yuechun Jiao, Oliver D. W. Hughes, Max Z. Festenstein, Zhengyang Bai, Jianming Zhao, Weibin Li, Kevin J. Weatherill, and C. Stuart Adams
Phys. Rev. Research 7, 033267 (2025) - Published 19 September, 2025
Davide Rattacaso, Daniel Jaschke, Marco Ballarin, Ilaria Siloi, and Simone Montangero
Phys. Rev. Research 7, 033268 (2025) - Published 22 September, 2025
Javad Kazemi, Michael Schuler, Christian Ertler, and Wolfgang Lechner
Phys. Rev. Research 7, 033269 (2025) - Published 22 September, 2025
Feng-Jui Chan, Po-Chen Kuo, Neill Lambert, Mauro Cirio, and Yueh-Nan Chen
Phys. Rev. Research 7, 033270 (2025) - Published 23 September, 2025
Roy J. Garcia, Gaurav Bhole, Kaifeng Bu, Liyuan Chen, Haribabu Arthanari, and Arthur Jaffe
Phys. Rev. Research 7, 033271 (2025) - Published 23 September, 2025
G. P. Teja, Chandan Kumar, Lukáš Lachman, and Radim Filip
Phys. Rev. Research 7, 033272 (2025) - Published 23 September, 2025
Romain Rescanieres, Romain Pierrat, and Arthur Goetschy
Phys. Rev. Research 7, 033273 (2025) - Published 23 September, 2025
Vishnu Chavva and Hugo Ribeiro
Phys. Rev. Research 7, 033274 (2025) - Published 23 September, 2025
Long D. H. My, Akshaya Jayashankar, Prabha Mandayam, and Hui Khoon Ng
Phys. Rev. Research 7, 033275 (2025) - Published 23 September, 2025
Damià Gomila
Phys. Rev. Research 7, 033276 (2025) - Published 23 September, 2025
C. Salgado-López, I. Rodríguez-Pérez, J. I. Apiñaniz, A. Curcio, T. Cebriano, A. Morabito, L. Volpe, and G. Gatti
Phys. Rev. Research 7, 033277 (2025) - Published 23 September, 2025
Ämin Baumeler and Stefan Wolf
Phys. Rev. Research 7, 033278 (2025) - Published 24 September, 2025
Flavio Del Santo, Gonzalo Manzano, and Časlav Brukner
Phys. Rev. Research 7, 033279 (2025) - Published 24 September, 2025
M. H. Cheng, Yu-Cheng Chen, Qian Wang, V. Bartsch, A. C. Medina, M. S. Kim, Alice Hu, and Min-Hsiu Hsieh
Phys. Rev. Research 7, 033280 (2025) - Published 24 September, 2025
Yijia Zhou, Wei Xia, Lin Li, and Weibin Li
Phys. Rev. Research 7, 033281 (2025) - Published 24 September, 2025
Sujeet Kumar Choudhary, Yingyou Ma, Aparna Baskaran, and Prerna Sharma
Phys. Rev. Research 7, 033282 (2025) - Published 24 September, 2025
Tony Mathew Blessan, Bastián Real, Camille Druelle, Clarisse Fournier, Alberto Muñoz de las Heras, Alejandro González-Tudela, Isabelle Sagnes, Abdelmounaim Harouri, Luc Le Gratiet, Aristide Lemaître, Sylvain Ravets, Jacqueline Bloch, Clément Hainaut, and Alberto Amo
Phys. Rev. Research 7, 033283 (2025) - Published 25 September, 2025
A. Huster Zapke and P. C. W. Holdsworth
Phys. Rev. Research 7, 033284 (2025) - Published 25 September, 2025
Peng Guo, Jaime Park, and Frank X. Lee
Phys. Rev. Research 7, 033285 (2025) - Published 26 September, 2025
Anirudh Jonnalagadda, Amit Agrawal, Atul Sharma, Walter Rocchia, and Sauro Succi
Phys. Rev. Research 7, 033286 (2025) - Published 26 September, 2025
Soham Pal, Oliver T. Whaites, Wolfgang Knolle, Tania S. Monteiro, and Helena S. Knowles
Phys. Rev. Research 7, 033287 (2025) - Published 26 September, 2025
David Darrow and John W. M. Bush
Phys. Rev. Research 7, 033288 (2025) - Published 26 September, 2025
Sanchit Srivastava and Shohini Ghose
Phys. Rev. Research 7, 033289 (2025) - Published 26 September, 2025
Han Xu, Kazuhiro Seki, and Seiji Yunoki
Phys. Rev. Research 7, 033290 (2025) - Published 29 September, 2025
Konstantinos Ladovrechis and Tobias Meng
Phys. Rev. Research 7, 033291 (2025) - Published 29 September, 2025
Nuria Santervás-Arranz, Massimiliano Stengel, and Emilio Artacho
Phys. Rev. Research 7, 033292 (2025) - Published 29 September, 2025
N. L. Diaz, Paolo Braccia, Martin Larocca, J. M. Matera, R. Rossignoli, and M. Cerezo
Phys. Rev. Research 7, 033294 (2025) - Published 29 September, 2025
Letian Chen and Gunnar Pruessner
Phys. Rev. Research 7, 033295 (2025) - Published 29 September, 2025
Santiago Bermúdez-Feijóo, Eduardo Zubizarreta Casalengua, Kai Müller, and Klaus D. Jöns
Phys. Rev. Research 7, 033296 (2025) - Published 29 September, 2025
E. Kochems, G. Quintero Angulo, R. Egger, C. Müller, and S. Villalba-Chávez
Phys. Rev. Research 7, 033297 (2025) - Published 29 September, 2025
Morten H. Christensen, Michael Schütt, Avraham Klein, and Rafael M. Fernandes
Phys. Rev. Research 7, 033298 (2025) - Published 29 September, 2025
Seiya Takamura and Nen Saito
Phys. Rev. Research 7, 033299 (2025) - Published 29 September, 2025
Xian Chen, Verónica Vázquez-Aceves, Siyuan Chen, Kejia Lee, Yanjun Guo, and Kuo Liu
Phys. Rev. Research 7, 033300 (2025) - Published 29 September, 2025
Hana Schiff, Paul McClarty, Jeffrey G. Rau, and Judit Romhányi
Phys. Rev. Research 7, 033301 (2025) - Published 30 September, 2025