Randall D. Kamien and Daniel Ucko
Phys. Rev. Research 6, 020001 (2024) - Published 21 May, 2024
Christopher Chong, Brian Kim, Evelyn Wallace, and Chiara Daraio
Phys. Rev. Research 6, 023045 (2024) - Published 11 April, 2024
Structures that are localized in time and periodic in space are experimentally observed in a phononic lattice. These structures are analogous to the famous “breathers,” but with the role of time and space switched.
Wei-Ming Chen and Pin-Ju Tsai
Phys. Rev. Research 6, 023084 (2024) - Published 22 April, 2024
This article uses an optimization algorithm to obtain single-mode Optical Probe States and provides a physical interpretation of these.
Po-Rong Lai, Jhen-Dong Lin, Yi-Te Huang, Hsien-Chao Jan, and Yueh-Nan Chen
Phys. Rev. Research 6, 023136 (2024) - Published 7 May, 2024
How to quick charge a quantum battery by using superposition of trajectories is shown. The proposed charging protocols have been verified on IBMQ and IonQ quantum processors.
Chang Hoong Chow, Boon Long Ng, Vindhiya Prakash, and Christian Kurtsiefer
Phys. Rev. Research 6, 023154 (2024) - Published 13 May, 2024
Cooling by electromagnetically induced transparency is experimentally demonstrated with an optically trapped single neutral atom. The Fano resonance feature is resolved in the fluorescence excitation spectra and the temperature profiles.
Yosef Ashkenazy and Naftali R. Smith
Phys. Rev. Research 6, 023187 (2024) - Published 20 May, 2024
A method for predicting annual rain distributions, based on combining monthly rain histograms from historical data, is introduced and applied to several locations in Israel. It is then argued (using tests of the method in a simple toy model) that the method gives reliable predictions not only for typical events but also for rare ones.
Junjie Qi, Haiwen Liu, Jie Liu, Hua Jiang, Dong E. Liu, Chui-Zhen Chen, Ke He, and X. C. Xie
Phys. Rev. Research 6, 023293 (2024) - Published 18 June, 2024
The transition from edge-dominated to bulk-dominated quantum interference patterns of supercurrents in a quantum anomalous Hall-based Josephson junction is investigated. An anomalous Fraunhofer-like pattern is observed due to the bulk carriers induced by magnetic domains, even when the chemical potential resides within the bulk gap.
Nathan Roberts, Guido Baardink, Anton Souslov, and Peter J. Mosley
Phys. Rev. Research 6, L022010 (2024) - Published 11 April, 2024
Characterizing topological devices can be a lengthy and difficult process. In an effort to simplify topological characterization, a single-shot method for observing topological winding numbers with only a broadband light source is introduced and demonstrated.
Thomas G. White et al.
Phys. Rev. Research 6, L022029 (2024) - Published 2 May, 2024
By employing high-resolution x-ray scattering techniques, the sound speed of methane under high-temperature and pressure conditions is determined, thereby demonstrating consistency with Birch’s law in this new parameter regime.
Laciel Alonso-Llanes, Angel Garcimartín, and Iker Zuriguel
Phys. Rev. Research 6, L022037 (2024) - Published 10 May, 2024
A robot swarm is used to simulate single-lane traffic, identifying three different states: free flow, intermittent, and totally congested. The stability and repeatability of these agents, which become a suitable model of programmable active-matter systems, is showcased.
N. J. Martin, M. Jalali Mehrabad, X. Chen, R. Dost, E. Nussbaum, D. Hallett, L. Hallacy, A. Foster, E. Clarke, P. K. Patil, S. Hughes, M. Hafezi, A. M. Fox, M. S. Skolnick, and L. R. Wilson
Phys. Rev. Research 6, L022065 (2024) - Published 20 June, 2024
A study examines directional light-matter interaction within quantum-dot embedded, topological photonic crystal waveguides, comparing their performance to conventional line defect waveguides. The findings indicate that topological waveguides exhibit weaker directional coupling, even with the application of state-of-the-art inverse design methods.
A. J. Ross, J. Chappell, J. J. van de Wetering, J. Cowley, E. Archer, N. Bourgeois, L. Corner, D. R. Emerson, L. Feder, X. J. Gu, O. Jakobsson, H. Jones, A. Picksley, L. Reid, W. Wang, R. Walczak, and S. M. Hooker
Phys. Rev. Research 6, L022001 (2024) - Published 3 April, 2024
A train of laser pulses guided by a 100-mm-long, all-optical plasma channel resonantly excites a large amplitude plasma wave. Pulse trains of a similar kind could be generated by joule-scale thin-disk lasers, offering a route to driving GeV-scale plasma accelerators at kilohertz pulse repetition rates.
Rubén Seoane Souto, Martin Leijnse, Constantin Schrade, Marco Valentini, Georgios Katsaros, and Jeroen Danon
Phys. Rev. Research 6, L022002 (2024) - Published 3 April, 2024
How an ac driving can tune the diode efficiency of an arbitrary supercurrent diode is shown. Unit efficiency can be achieved in the slow-driving regime.
Kieran F. Thomas, Shijie Li, A. H. Abbas, Andrew G. Truscott, and Sean S. Hodgman
Phys. Rev. Research 6, L022003 (2024) - Published 3 April, 2024
Correlation functions up to the fifth order between atoms in a degenerate Fermi gas of metastable helium atoms are measured, with antibunching observed for all orders in a direct demonstration of the Pauli exclusion principle. The results agree well with a simple model based on the decomposition of higher order correlation functions into lower orders via Wick’s theorem.
Matthew Jordan, Petros Androvitsaneas, Rachel N. Clark, Aristotelis Trapalis, Ian Farrer, Wolfgang Langbein, and Anthony J. Bennett
Phys. Rev. Research 6, L022004 (2024) - Published 4 April, 2024
By placing quantum-dot emitters at different positions in the cavity mode of the electric field within a GaAs-AlGaAs micropillar, the effects of noncavity modes on Purcell factor, factor, and collection efficiency are quantified, with results suggesting common experimental practice systematically overestimates the Purcell factor. It is also shown that the zero-phonon line and phonon-assisted emission into the cavity mode HE is suppressed by positioning dots at the field node.
Anuja Sahasrabudhe, Mikhail A. Prosnikov, Thomas C. Koethe, Philipp Stein, Vladimir Tsurkan, Alois Loidl, Markus Grüninger, Hamoon Hedayat, and Paul H. M. van Loosdrecht
Phys. Rev. Research 6, L022005 (2024) - Published 5 April, 2024
Raman optical activity provides direct spectroscopic evidence for the existence of a highly unconventional field-induced phase in the proximate Kitaev material -RuCl. This phase is characterized by the presence of fully chiral magnetic excitations.
H. S. Xu and L. Jin
Phys. Rev. Research 6, L022006 (2024) - Published 5 April, 2024
A novel approach using the interplay between loss and localization to achieve incoherent perfect absorption is proposed. By engineering the losses of a flat-band lattice, a robust incoherent perfect absorption that is immune to disorder and defects is demonstrated.
Florian Lange, Gerhard Wellein, and Holger Fehske
Phys. Rev. Research 6, L022007 (2024) - Published 8 April, 2024
A light-pulse-driven transition from a charge-density wave to a Tomonaga-Luttinger liquid is demonstrated, focusing on characteristic effects in the Edwards fermion-boson model.
David Cantor, Emilien Azéma, and Carlos Ovalle
Phys. Rev. Research 6, L022008 (2024) - Published 8 April, 2024
Based on discrete-element numerical simulations of wet granular samples, this article examines why effective stress approaches have failed to describe the mechanics of unsaturated granular media. Profound differences in the fabric of dry and wet materials show the relevance of contact and force networks in the search for a generalized effective stress principle.
Akito Daido and Youichi Yanase
Phys. Rev. Research 6, L022009 (2024) - Published 9 April, 2024
Based on a generalized nonlinear paraconductivity framework with microscopically derived Ginzburg-Landau coefficients, nonreciprocal charge transport is theoretically established as a key indicator of helical superconductivity.
Nathan Roberts, Guido Baardink, Anton Souslov, and Peter J. Mosley
Phys. Rev. Research 6, L022010 (2024) - Published 11 April, 2024
Characterizing topological devices can be a lengthy and difficult process. In an effort to simplify topological characterization, a single-shot method for observing topological winding numbers with only a broadband light source is introduced and demonstrated.
Henrique C. Prates and Vladimir V. Konotop
Phys. Rev. Research 6, L022011 (2024) - Published 15 April, 2024
Oscillations of localized states of Bose-Einstein condensates in tilted quasiperiodic optical lattices are described. The dynamics is driven by quasiresonances assisted by simultaneous tunneling of atoms in coordinate and energy spaces. The selection rule determining resonant states is established.
Tahiyat Rahman, Anna Wirth-Singh, Andrew Ivanov, Daniel Gochnauer, Emmett Hough, and Subhadeep Gupta
Phys. Rev. Research 6, L022012 (2024) - Published 15 April, 2024
Atomic Bloch oscillations in an optical lattice transfer momentum from photons to atoms and can be used within atom interferometers to enhance their force sensing capabilities. The quantum phase accrued during such momentum transfer is measured for up to 100 photons and found to be consistent with fully coherent evolution.
Serra Erdamar, Maryam Abbasi, Byung Ha, Weijian Chen, Jacob Muldoon, Yogesh Joglekar, and Kater W. Murch
Phys. Rev. Research 6, L022013 (2024) - Published 16 April, 2024
Work fluctuations of a qubit undergoing dynamics governed by a non-Hermitian Hamiltonian are investigated, demonstrating the validity of the Jarzynski equality even in parameter regimes corresponding to purely imaginary energy eigenvalues. The role of parity-time symmetry in determining the applicability of the second law of thermodynamics to non-Hermitian systems is highlighted, contributing to the understanding of nonequilibrium quantum thermodynamics in open systems.
G. Pascual, T. Wasak, A. Negretti, G. E. Astrakharchik, and J. Boronat
Phys. Rev. Research 6, L022014 (2024) - Published 16 April, 2024
The behavior of an impurity in a trapped Bose gas at finite temperature is studied. It is observed that the impurity is expelled to the edge of the bath at low temperatures, while it remains at the center of the trap as temperature increases.
Song Gao (高颂), Julio M. Ottino, Richard M. Lueptow, and Paul B. Umbanhowar
Phys. Rev. Research 6, L022015 (2024) - Published 16 April, 2024
In a size-disperse granular shear flow, particles too small to be trapped in the absence of shear percolate more slowly with increasing shear rate because of their increased velocity fluctuations, while small particles large enough to be trapped at zero shear are mobilized with increasing shear rate but eventually reach a maximum percolation speed and then slow down because of velocity fluctuations
Yuman He, Kangle Li, Yanbai Zhang, and Hoi Chun Po
Phys. Rev. Research 6, L022016 (2024) - Published 17 April, 2024
A direct construction for the projected entangled pair states representation of states that admit descriptions in terms of exponentially localized Wannier functions is proposed. The construction involves first obtaining a tree tensor network construction for subregions, then stacking the tree tensor networks, and finally compressing local tensors successively.
Chao-Ran Cai, Yuan-Yuan Nie, and Petter Holme
Phys. Rev. Research 6, L022017 (2024) - Published 22 April, 2024
The phenomenon of epidemic criticality in temporal networks is remarkably complex due to the competition between the network correlation effect (the persistence of links in the network) and the dynamic correlation effect (the tendency of infected nodes to group together).
Shalabh K. Anand, Chiu Fan Lee, and Thibault Bertrand
Phys. Rev. Research 6, L022018 (2024) - Published 22 April, 2024
The onset of athermal jamming is argued to be a critical phenomenon describable by a mean-field theory in physical dimensions. By elucidating the scaling behavior of jammed systems subjected to active forces and thermal fluctuations in the vicinity of the jamming onset, it’s shown that the physics of active jamming remains mean-field-like in contrast with active systems in which anomalous scaling behavior is the norm.
Javier Cuerda, Jani M. Taskinen, Nicki Källman, Leo Grabitz, and Päivi Törmä
Phys. Rev. Research 6, L022020 (2024) - Published 25 April, 2024
The full quantum geometric tensor (QGT) is experimentally obtained for a plasmonic lattice. The quantum metric and the Berry curvature, related to the real and imaginary parts of the QGT, respectively, are found to be nonzero along the diagonals of the Brillouin zone, even for a trivial square lattice. While the quantum metric emerges from the interplay of polarization and the mode structure, the origin of the Berry curvature is purely non-Hermitian due to the system losses.
Yoshifumi Nakata and Masaki Tezuka
Phys. Rev. Research 6, L022021 (2024) - Published 25 April, 2024
Not all quantum chaos scrambles quantum information: While the Sachdev-Ye-Kitaev model does, typical chaotic spin chains do not.
Takahiro Ohgoe, Hokuto Iwakiri, Masaya Kohda, Kazuhide Ichikawa, Yuya O. Nakagawa, Hubert Okadome Valencia, and Sho Koh
Phys. Rev. Research 6, L022022 (2024) - Published 25 April, 2024
The first-principles calculation of a quasiparticle band structure on actual quantum computers is demonstrated. This is achieved by hybrid quantum-classical algorithms in conjunction with qubit-reduction and error-mitigation techniques.
Ziwei Dou, Xavier Ballu, Quan Dong, Yong Jin, Richard Deblock, Sandrine Autier-Laurent, Sophie Guéron, Hélène Bouchiat, and Meydi Ferrier
Phys. Rev. Research 6, L022023 (2024) - Published 25 April, 2024
The supercurrent noise in the equilibrium state induced by thermal fluctuations of the phase-coherent Andreev bound states in a mesoscopic superconductor-normal ring is directly observed and the fluctuation-dissipation relation in such a system is experimentally confirmed.
Masashi K. Kajita, Yoshiyuki Konishi, and Tetsuhiro S. Hatakeyama
Phys. Rev. Research 6, L022024 (2024) - Published 29 April, 2024
How do mitochondria align at almost regular intervals in nerve axons? The mechanism is deciphered as the mitochondria employing the noise depending on the ATP, similar to the thermodynamic force.
Daniele Guerci, Yuncheng Mao, and Christophe Mora
Phys. Rev. Research 6, L022025 (2024) - Published 30 April, 2024
In the helical twisted trilayer graphene with equal twist angles, a hexagonal mosaic pattern spanning the moiré-of-moiré length scale and featuring alternating 1 Chern numbers in each block is revealed.
Ohad Vilk, Ralf Metzler, and Michael Assaf
Phys. Rev. Research 6, L022026 (2024) - Published 2 May, 2024
A prototypical two-state gene-expression model is investigated, where the activation process has a fat-tailed (nonexponential) waiting time distribution, resulting in nonstationary dynamics and emerging nonergodicity.
M. L. Savchenko, J. Gospodarič, A. Shuvaev, I. A. Dmitriev, V. Dziom, A. A. Dobretsova, N. N. Mikhailov, Z. D. Kvon, and A. Pimenov
Phys. Rev. Research 6, L022027 (2024) - Published 2 May, 2024
Subterahertz transmittance of two-dimensional systems reveals the complexity of optical Shubnikov–de Haas oscillations featuring “universal” nodes at overtones of the cyclotron resonance as well as “tunable” nodes at positions sensitive to all parameters of the structure.
Xin Du and Kumiko Tanaka-Ishii
Phys. Rev. Research 6, L022028 (2024) - Published 2 May, 2024
The complexity of human languages is explored through the lens of fractal geometry and large language models, uncovering a multifractal structure. A universal correlation dimension of approximately 6.5 is identified in literary texts written in four languages, a phenomenon that appears to stem from the presence of long memory in these texts.
Thomas G. White et al.
Phys. Rev. Research 6, L022029 (2024) - Published 2 May, 2024
By employing high-resolution x-ray scattering techniques, the sound speed of methane under high-temperature and pressure conditions is determined, thereby demonstrating consistency with Birch’s law in this new parameter regime.
Pye Ton How and Sungkit Yip
Phys. Rev. Research 6, L022030 (2024) - Published 3 May, 2024
The physics of superfluidity of spin-1 Bose gas shares many similarities with that of multicomponent superconductivity, and it has been suspected that a strongly ferromagnetic Bose gas (such as Li) may realize the elusive high-order symmetry-breaking state proposed in superconductors. It is theoretically shown that the dilute Bose gas doesn’t exhibit such states, but the strong ferromagnetism does drive a joint first-order superfluid transition, contrary to a second-order one in the mean-field prediction.
M. Reitner, L. Crippa, D. R. Fus, J. C. Budich, A. Toschi, and G. Sangiovanni
Phys. Rev. Research 6, L022031 (2024) - Published 6 May, 2024
At thermal equilibrium, generalized susceptibilities encoding the static physical response of Hermitian many-electron systems are shown to possess inherent non-Hermitian matrix symmetries, leading to the generic occurrence of exceptional points. In strongly correlated electron systems, such exceptional points are found to necessarily promote electronic charge instabilities that occur in the proximity of a Mott transition to a topologically robust phenomenon.
Sadhitro De, Dhrubaditya Mitra, and Rahul Pandit
Phys. Rev. Research 6, L022032 (2024) - Published 6 May, 2024
For strongly compressible shock-dominated turbulence, a heuristic theoretical framework, which shows that the statistics of pair dispersion of Lagrangian tracer particles is different from its counterpart for incompressible-fluid turbulence, is developed. The trapping of Lagrangian particles in shocks is responsible for this difference, as is shown by extensive direct numerical simulations of the randomly forced two-dimensional Burgers equation, which models shock-dominated turbulence.
Reuben R. W. Wang and John L. Bohn
Phys. Rev. Research 6, L022033 (2024) - Published 6 May, 2024
Understanding collisional thermalization among ultracold molecules is essential to achieving quantum degenerate gases with evaporative cooling. A theoretical technique for efficiently handling thermalization calculations with nonuniversal dipolar scattering is demonstrated, providing a widely applicable tool for exploring optimal evaporation protocols.
N. Mousavi, J. Qiu, B. Mehlig, L. Zhao, and K. Gustavsson
Phys. Rev. Research 6, L022034 (2024) - Published 7 May, 2024
Zooplankton reduce their vulnerability to predation by evading high-strain areas. A robust strategy for how such microswimmers can navigate by sensing hydromechanical signals to steer clear of high-strain regions in turbulent environments has been identified.
B. Dutta, J. C. de Aquino Carvalho, G. Garcia-Arellano, P. Pedri, A. Laliotis, C. Boldt, J. Kaushal, and S. Scheel
Phys. Rev. Research 6, L022035 (2024) - Published 9 May, 2024
Higher-order Casimir-Polder interactions between highly excited Rydberg atoms and macroscopic surfaces are studied, providing calculations of a term that evolves with the inverse fifth power of the atom-surface distance. The effects of this higher-order term in Casimir-Polder thin-cell spectroscopy are also investigated.
Thales A. B. Pinto Silva and David Gelbwaser-Klimovsky
Phys. Rev. Research 6, L022036 (2024) - Published 9 May, 2024
The claim that no quantum work measurement satisfies standard physical principles has raised compatibility concerns between quantum mechanics, thermodynamics, and the classical limit. A revised framework is presented for addressing the classical limit, and it is shown that work defined as a quantum observable aligns quantum work statistics with thermodynamic principles.
Laciel Alonso-Llanes, Angel Garcimartín, and Iker Zuriguel
Phys. Rev. Research 6, L022037 (2024) - Published 10 May, 2024
A robot swarm is used to simulate single-lane traffic, identifying three different states: free flow, intermittent, and totally congested. The stability and repeatability of these agents, which become a suitable model of programmable active-matter systems, is showcased.
B. Das et al.
Phys. Rev. Research 6, L022038 (2024) - Published 10 May, 2024
In semimagic nuclei, a broken pair of nucleons generate a characteristic regular pattern in energy and transition rates for protons and neutrons residing in the same orbital of the open shell. Lifetime measurement in Rh nucleus shows a deviation from this pattern in the orbital of the open proton shell.
Syamsundar De, Vahid Ansari, Jan Sperling, Sonja Barkhofen, Benjamin Brecht, and Christine Silberhorn
Phys. Rev. Research 6, L022040 (2024) - Published 13 May, 2024
Integrated linear optical networks encoded in frequency bins are realized in a dispersion-engineered nonlinear optical waveguide. The network is scalable and will serve as basis for quantum information technologies thanks to high fidelities, free reconfigurability, and full connectivity.
Hirofumi Nishi, Taichi Kosugi, Yusuke Nishiya, and Yu-ichiro Matsushita
Phys. Rev. Research 6, L022041 (2024) - Published 13 May, 2024
For quantum state preparation, a nonunitary operator that decays unwanted states contained in an initial state is probabilistically realized on a quantum computer. Combining quantum amplitude amplification with multistep probabilistic algorithms is proposed, leading to quadratic speedup and quantum advantages in quantum state preparation.
Florinda Viñas Boström and Emil Viñas Boström
Phys. Rev. Research 6, L022042 (2024) - Published 16 May, 2024
One-dimensional -wave superconductors can reside in a topological phase and are predicted to host non-Abelian states at their ends. It is shown that attractive interactions mediated by magnons can induce intrinsic triplet superconductivity in an electronic chain in proximity to a spin spiral, and combined with the effects from coupling to the static spin spiral the magnon-mediated interaction stabilizes a topological superconducting phase.
Kuheli Biswas and Naama Brenner
Phys. Rev. Research 6, L022043 (2024) - Published 17 May, 2024
A study reveals that division time distributions in proliferating cells vary in shape across experiments, unlike the universally consistent cell size distributions. This variation is influenced by the robustness of the corresponding shape factors in model parameter space.
Michalis Chatzittofi, Jaime Agudo-Canalejo, and Ramin Golestanian
Phys. Rev. Research 6, L022044 (2024) - Published 21 May, 2024
Microswimmers are driven by a nonequilibrium chemical cycle. Using a thermodynamically consistent model with full hydrodynamics, it is shown that external forces affect their motion not only by passively dragging them but also by influencing their active swimming through the same mechanochemical coupling that allows them to swim, suggesting a strategy for the experimental inference of the chemical forces that drive them.
Oliver M. Drozdowski and Ulrich S. Schwarz
Phys. Rev. Research 6, L022045 (2024) - Published 22 May, 2024
The mechanics of spherical epithelial sheets like cysts or intestinal organoids can be described by a three-dimensional vertex model. The vertex model is coarse grained to an elastic continuum theory of bent thin sheets. A morphological instability at topological defects is found in the vertex model and quantitatively explained through buckling within the continuum theory.
Naoki Hiraiwa, Mai Bando, Isaia Nisoli, and Yuzuru Sato
Phys. Rev. Research 6, L022046 (2024) - Published 24 May, 2024
The behavior of lobes, geometrical structures in Hamiltonian systems, is studied to design robust trajectories of spacecraft in the Earth-Moon system. This control framework connects start and goal orbits via a few chaotic orbits within appropriately selected lobes, which results in finding a short-time transfer in spacecraft dynamics.
Gönenç Moğol, Brian Kaufman, Thomas Weinacht, Chuan Cheng, and Itzik Ben-Itzhak
Phys. Rev. Research 6, L022047 (2024) - Published 28 May, 2024
Using pulse shape spectroscopy, we demonstrate long-lived electronic coherences in molecules, and we are able to disentangle the electronic and nuclear degrees of freedom by performing momentum resolved covariance measurements of the fragment ions as we vary the phase between pump and probe pulses. These results pave the way for measuring coupled electron-nuclear dynamics in molecules and understanding the role that electronic coherences play in fundamental photophysical and photochemical processes.
S. Akatsuka, M. Sakano, T. Yamamoto, T. Nomoto, R. Arita, R. Murata, T. Sasagawa, K. Watanabe, T. Taniguchi, N. Mitsuishi, M. Kitamura, K. Horiba, K. Sugawara, S. Souma, T. Sato, H. Kumigashira, K. Shinokita, H. Wang, K. Matsuda, S. Masubuchi, T. Machida, and K. Ishizaka
Phys. Rev. Research 6, L022048 (2024) - Published 3 June, 2024
It is possible to create a bilayer system with broken spatial inversion symmetry by stacking two monolayers of 1-type transition metal dichalcogenides with a 180 twist, each originally possessing spatial inversion symmetry.
Roman Worschech and Bernd Rosenow
Phys. Rev. Research 6, L022049 (2024) - Published 3 June, 2024
A study reveals that a neural network must have an exponentially large hidden layer relative to the input dimension to accurately learn the output of a teacher perceptron, emphasizing the significant size constraints necessary for perfect generalization in over-parametrized models.
Yihong Shi, Ramin Golestanian, and Andrej Vilfan
Phys. Rev. Research 6, L022050 (2024) - Published 3 June, 2024
Mutual information is introduced as a concept from information theory to provide a universal measure of mixing in viscous fluids, and it is demonstrated how it can be computed using data compression algorithms.
Yong-Hyun Kim, Paul Chow, Yuming Xiao, Guoyin Shen, and Sung Keun Lee
Phys. Rev. Research 6, L022051 (2024) - Published 3 June, 2024
A study presents direct experimental probing of the electronic structures of boron oxide glass under compression up to 2.2-megabar pressures via inelastic x-ray scattering.
S. A. Henneberg and G. G. Plunk
Phys. Rev. Research 6, L022052 (2024) - Published 4 June, 2024
Can the strengths of the two leading magnetic confinement concepts, tokamaks and stellarators, be merged into one single flexible device? As a possible answer to this question, we propose a first-of-its kind optimized stellarator-tokamak hybrid. This hybrid requires only a single type of stellarator coil in addition to the tokamak coils; it has sufficient particle confinement, and it reduces the needed plasma current, which can be a driver for unwanted instabilities.
Jun-Ang Wang, Mohamed Assili, and Panagiotis Kotetes
Phys. Rev. Research 6, L022053 (2024) - Published 6 June, 2024
The superfluid stiffness and the Josephson quantum capacitance of chiral-symmetric superconducting Dirac semimetals are shown to become quantized in nonuniversal units due to nontrivial topology. The topological constraint imposed on the total superfluid stiffness further leads to the here-termed quantum admittance effect, that is, the universal topological quantization of the admittance modulus when the system is subject to an ac perturbation with a frequency tuned at the absorption edge.
Ke Huang, DinhDuy Vu, Sankar Das Sarma, and Xiao Li
Phys. Rev. Research 6, L022054 (2024) - Published 7 June, 2024
Many-body localization is studied in a model where the interaction seems to enhance the localization rather than reduce it. A mean-field theory is proposed to provide an accurate and intuitive understanding of the mechanism behind the enhancement.
Daniel Barragan-Yani and Ludger Wirtz
Phys. Rev. Research 6, L022055 (2024) - Published 7 June, 2024
Dislocations are explored as possible components of solid-state quantum devices. Their strain induces the creation of self-assembled arrays of defect-based qubits.
S. A. Myers, Haoyun Huang, Waseem Hussain, L. N. Pfeiffer, K. W. West, and G. A. Csáthy
Phys. Rev. Research 6, L022056 (2024) - Published 10 June, 2024
In low-disorder samples, bulk quasiparticles of the = 1 integer quantum Hall state are either randomly localized or ordered on a Wigner lattice. It is found that thermal activation energy has a dramatic behavior with the quasiparticle density, exhibiting conspicuous local minima at the crossover from the randomly localized phase to the Wigner solid.
Kohei Yoshimura and Sosuke Ito
Phys. Rev. Research 6, L022057 (2024) - Published 10 June, 2024
Stochastic thermodynamics has unveiled several universal trade-off relations, but they do not have to be restricted to mesoscopic systems. The geometric structure of the thermodynamic forces in hydrodynamics reveals the similarity between stochastic thermodynamics and hydrodynamics and helps generalize the housekeeping–excess decomposition of entropy production and derive an inequality that resembles the thermodynamic uncertainty relations.
Lidia Stocker and Oded Zilberberg
Phys. Rev. Research 6, L022058 (2024) - Published 10 June, 2024
The many-body effects arising when coupling whispering gallery electronic (cavity) modes to a double-dot system are investigated. Conventional Kondo effects, where the dots hybridize with their leads, compete with a cavity-mediated dot-dot hybridization, engendering an exotic shuttling of Kondo screening between the leads and the formation of a Kondo-cat state.
Enrico C. Domanti, Dario Zappalà, Alejandro Bermudez, and Luigi Amico
Phys. Rev. Research 6, L022059 (2024) - Published 11 June, 2024
A scalable Floquet scheme for the quantum simulation of the real-time dynamics in a ℤ lattice gauge theory is proposed, considering periodically driven arrays of Rydberg atoms in a tweezer-ladder geometry. The observation of gauge-invariant confinement dynamics is demonstrated to be in reach of current experimental techniques.
Dian Weerakonda, Anthony Dennis, Marco Calvi, and John Durrell
Phys. Rev. Research 6, L022060 (2024) - Published 11 June, 2024
A concept for a staggered array undulator that can be constructed using bulk high-temperature superconductors and magnetized with pulsed field magnetization.
Elia Turco, Markus Aapro, Somesh C. Ganguli, Nils Krane, Robert Drost, Nahual Sobrino, Annika Bernhardt, Michal Juríček, Roman Fasel, Pascal Ruffieux, Peter Liljeroth, and David Jacob
Phys. Rev. Research 6, L022061 (2024) - Published 12 June, 2024
A protocol to reliably demonstrate Kondo behavior in tunneling spectroscopy is presented, employing a Hurwitz line shape to correctly describe the Fermi-Dirac-broadened Kondo peak, as well as a recently derived equation for the intrinsic temperature dependence of the Kondo resonance.
Carmen L. Lee and Kari Dalnoki-Veress
Phys. Rev. Research 6, L022062 (2024) - Published 14 June, 2024
Buckling instabilities can be seen in systems ranging from biological flagella to cables dropped to the ocean floor: the coiling of a dropped chain or a falling jet of honey are familiar examples. A chain of sticky bubbles is presented that rise due to buoyancy and buckle due to hydrodynamic effects.
Virgile Troude, Sandro Claudio Lera, and Didier Sornette
Phys. Rev. Research 6, L022063 (2024) - Published 17 June, 2024
The calibration-control dilemma is addressed in unstable dynamical systems where control distorts the determination of the parameters that are needed for control implementation, leading to large, unwanted fluctuations. By integrating parameter calibration and control within a data assimilation framework, the proposed method achieves performance comparable to systems with fully known parameters, allowing control of most complex systems for which equations or parameters are unknown.
Bo Xiao, Javier Robledo Moreno, Matthew Fishman, Dries Sels, Ehsan Khatami, and Richard Scalettar
Phys. Rev. Research 6, L022064 (2024) - Published 17 June, 2024
Learning the multiscale structural complexity can unveil off-diagonal long-range order solely through experimentally available descriptors.
N. J. Martin, M. Jalali Mehrabad, X. Chen, R. Dost, E. Nussbaum, D. Hallett, L. Hallacy, A. Foster, E. Clarke, P. K. Patil, S. Hughes, M. Hafezi, A. M. Fox, M. S. Skolnick, and L. R. Wilson
Phys. Rev. Research 6, L022065 (2024) - Published 20 June, 2024
A study examines directional light-matter interaction within quantum-dot embedded, topological photonic crystal waveguides, comparing their performance to conventional line defect waveguides. The findings indicate that topological waveguides exhibit weaker directional coupling, even with the application of state-of-the-art inverse design methods.
Adrián J. Suñer-Rubio, Christoph Lemell, Roger Y. Bello, Joachim Burgdörfer, Alicia Palacios, and Fernando Martín
Phys. Rev. Research 6, L022066 (2024) - Published 20 June, 2024
Nuclear motion is responsible for a significant increase of the two-photon ionization delays in molecules due to the temporal confinement of the ejected electron between two nuclei.
N. Pulido-Mateo, H. Mendpara, M. Duwe, T. Dubielzig, G. Zarantonello, L. Krinner, and C. Ospelkaus
Phys. Rev. Research 6, L022067 (2024) - Published 24 June, 2024
A universal set of microwave-driven quantum gates is implemented on a two-qubit trapped-ion quantum register, and the ability to carry out arbitrary circuits is demonstrated using the cycle benchmarking protocol. The structure can serve as a universal quantum computation register for the quantum CCD architecture of the trapped-ion quantum computer.
Kanato Goto, Masahiro Nozaki, Shinsei Ryu, Kotaro Tamaoka, and Mao Tian Tan
Phys. Rev. Research 6, 023001 (2024) - Published 1 April, 2024
Devashish Tupkary, Ernest Y.-Z. Tan, and Norbert Lütkenhaus
Phys. Rev. Research 6, 023002 (2024) - Published 1 April, 2024
Yohei Saito, Owen Ganter, Chao Shang, Kenichiro Hashimoto, Takahiko Sasaki, Stephen M. Winter, Jens Müller, and Michael Lang
Phys. Rev. Research 6, 023003 (2024) - Published 1 April, 2024
Elizabeth Louis Pereira, Hongwei Li, Andrea Blanco-Redondo, and Jose L. Lado
Phys. Rev. Research 6, 023004 (2024) - Published 1 April, 2024
Dongrui Yu, Ziyang Chen, Yufei Zhang, Ziyi Jin, Song Yu, Bin Luo, and Hong Guo
Phys. Rev. Research 6, 023005 (2024) - Published 1 April, 2024
Gian Marco Visani, Michael N. Pun, Arman Angaji, and Armita Nourmohammad
Phys. Rev. Research 6, 023006 (2024) - Published 1 April, 2024
Yifan Cai, Tao Wang, and Liu Zhao
Phys. Rev. Research 6, 023007 (2024) - Published 1 April, 2024
B. Braeckeveldt, K. J. H. Peters, B. Verdonschot, B. Maes, and S. R. K. Rodriguez
Phys. Rev. Research 6, 023008 (2024) - Published 2 April, 2024
Ryo Watanabe, Keisuke Fujii, and Hiroshi Ueda
Phys. Rev. Research 6, 023009 (2024) - Published 2 April, 2024
Alexander Stegmaier, Hauke Brand, Stefan Imhof, Alexander Fritzsche, Tobias Helbig, Tobias Hofmann, Igor Boettcher, Martin Greiter, Ching Hua Lee, Gaurav Bahl, Alexander Szameit, Tobias Kießling, Ronny Thomale, and Lavi K. Upreti
Phys. Rev. Research 6, 023010 (2024) - Published 2 April, 2024
Joseph J. Cuozzo, Wei Pan, Javad Shabani, and Enrico Rossi
Phys. Rev. Research 6, 023011 (2024) - Published 2 April, 2024
Cheng Zhang, Pengfei Liang, Neill Lambert, and Mauro Cirio
Phys. Rev. Research 6, 023012 (2024) - Published 2 April, 2024
K. R. P. Kafka, S. X. Hu, H. Huang, V. N. Goncharov, and S. G. Demos
Phys. Rev. Research 6, 023013 (2024) - Published 3 April, 2024
Haolan Xu, Xu Zheng, and Xinghua Shi
Phys. Rev. Research 6, 023014 (2024) - Published 3 April, 2024
Benedikt Tissot, Hugo Ribeiro, and Florian Marquardt
Phys. Rev. Research 6, 023015 (2024) - Published 3 April, 2024
Diego Castro, Franck Ruffier, and Christophe Eloy
Phys. Rev. Research 6, 023016 (2024) - Published 4 April, 2024
Georg Engelhardt, Amit Bhoonah, and W. Vincent Liu
Phys. Rev. Research 6, 023017 (2024) - Published 4 April, 2024
Jorge Pretel, Victor Buendía, Joaquín J. Torres, and Miguel A. Muñoz
Phys. Rev. Research 6, 023018 (2024) - Published 4 April, 2024
Louis Schatzki, Guangkuo Liu, M. Cerezo, and Eric Chitambar
Phys. Rev. Research 6, 023019 (2024) - Published 4 April, 2024
Weiyuan Gong, Dong Yuan, Weikang Li, and Dong-Ling Deng
Phys. Rev. Research 6, 023020 (2024) - Published 4 April, 2024
Paulin de Schoulepnikoff, Oriel Kiss, Sofia Vallecorsa, Giuseppe Carleo, and Michele Grossi
Phys. Rev. Research 6, 023021 (2024) - Published 4 April, 2024
Thibault Bertrand, Joseph d'Alessandro, Ananyo Maitra, Shreyansh Jain, Barbara Mercier, René-Marc Mège, Benoit Ladoux, and Raphaël Voituriez
Phys. Rev. Research 6, 023022 (2024) - Published 4 April, 2024
Yong-Chang Zhang, Thomas Pohl, and Fabian Maucher
Phys. Rev. Research 6, 023023 (2024) - Published 5 April, 2024
Lorenzo Oghittu, Juliette Simonet, Philipp Wessels-Staarmann, Markus Drescher, Klaus Sengstock, Ludwig Mathey, and Antonio Negretti
Phys. Rev. Research 6, 023024 (2024) - Published 5 April, 2024
Martin Skënderas, Spencer W. Jolly, and Martin Virte
Phys. Rev. Research 6, 023025 (2024) - Published 5 April, 2024
Daniel Basilewitsch, Clemens Dlaska, and Wolfgang Lechner
Phys. Rev. Research 6, 023026 (2024) - Published 5 April, 2024
Guilherme Volpe Bossa, Shai Bel, Andrew Mugler, and Amir Erez
Phys. Rev. Research 6, 023027 (2024) - Published 5 April, 2024
T. Pietrangeli, C. Ybert, C. Cottin-Bizonne, and F. Detcheverry
Phys. Rev. Research 6, 023028 (2024) - Published 5 April, 2024
Juuso Manninen, Robert H. Blick, and Francesco Massel
Phys. Rev. Research 6, 023029 (2024) - Published 5 April, 2024
Jan Šuntajs, Miroslav Hopjan, Wojciech De Roeck, and Lev Vidmar
Phys. Rev. Research 6, 023030 (2024) - Published 5 April, 2024
Kapil Goswami, Rick Mukherjee, Herwig Ott, and Peter Schmelcher
Phys. Rev. Research 6, 023031 (2024) - Published 8 April, 2024
Helena Drüeke and Dieter Bauer
Phys. Rev. Research 6, 023032 (2024) - Published 8 April, 2024
Kok Wee Song, Salvatore Chiavazzo, and Oleksandr Kyriienko
Phys. Rev. Research 6, 023033 (2024) - Published 8 April, 2024
Jeremy Strockoz, Daniil S. Antonenko, Dmitri LaBelle, and Jörn W. F. Venderbos
Phys. Rev. Research 6, 023034 (2024) - Published 8 April, 2024
Wan-Guan Chang, Chia-Yi Ju, Guang-Yin Chen, Yueh-Nan Chen, and Huan-Yu Ku
Phys. Rev. Research 6, 023035 (2024) - Published 8 April, 2024
S. Arapan, P. Nieves, J. Šebesta, A. Dzubinska, M. Reiffers, M. Fabián, K. Arun, and D. Legut
Phys. Rev. Research 6, 023036 (2024) - Published 9 April, 2024
Eva Kilian, Marko Toroš, P. F. Barker, and Sougato Bose
Phys. Rev. Research 6, 023037 (2024) - Published 9 April, 2024
Shashaank Khanna, Marina Maciel Ansanelli, Matthew F. Pusey, and Elie Wolfe
Phys. Rev. Research 6, 023038 (2024) - Published 9 April, 2024
Uri Kapustin, Aishani Ghosal, and Gili Bisker
Phys. Rev. Research 6, 023039 (2024) - Published 10 April, 2024
Andre G. Campos, Karen Z. Hatsagortsyan, and Christoph H. Keitel
Phys. Rev. Research 6, 023040 (2024) - Published 11 April, 2024
Pierre-Gabriel Rozon and Kartiek Agarwal
Phys. Rev. Research 6, 023041 (2024) - Published 11 April, 2024
Koki Chinzei, Quoc Hoan Tran, Kazunori Maruyama, Hirotaka Oshima, and Shintaro Sato
Phys. Rev. Research 6, 023042 (2024) - Published 11 April, 2024
K. M. Ranjith, K. Yu. Povarov, Z. Yan, A. Zheludev, and M. Horvatić
Phys. Rev. Research 6, 023043 (2024) - Published 11 April, 2024
Bowen Ma, Z. D. Wang, and Gang V. Chen
Phys. Rev. Research 6, 023044 (2024) - Published 11 April, 2024
Christopher Chong, Brian Kim, Evelyn Wallace, and Chiara Daraio
Phys. Rev. Research 6, 023045 (2024) - Published 11 April, 2024
Structures that are localized in time and periodic in space are experimentally observed in a phononic lattice. These structures are analogous to the famous “breathers,” but with the role of time and space switched.
Thivan M. Gunawardana, Ari M. Turner, and Ryan Barnett
Phys. Rev. Research 6, 023046 (2024) - Published 11 April, 2024
Arjun Dey and David F. Mross
Phys. Rev. Research 6, 023047 (2024) - Published 12 April, 2024
Hao Lyu, Yuanyuan Chen, Qizhong Zhu, and Yongping Zhang
Phys. Rev. Research 6, 023048 (2024) - Published 12 April, 2024
I. A. Ivanov, A. S. Kheifets, A. Schimmoller, A. S. Landsman, and Kyung Taec Kim
Phys. Rev. Research 6, 023049 (2024) - Published 15 April, 2024
Marcin Płodzień, Tomasz Wasak, Emilia Witkowska, Maciej Lewenstein, and Jan Chwedeńczuk
Phys. Rev. Research 6, 023050 (2024) - Published 15 April, 2024
Ernesto Pini, Fabrizio Martelli, Alexander Gatto, Henrik Schäfer, Diederik S. Wiersma, and Lorenzo Pattelli
Phys. Rev. Research 6, 023051 (2024) - Published 15 April, 2024
Chengdeng Gou, Xiangming Hu, Jun Xu, and Fei Wang
Phys. Rev. Research 6, 023052 (2024) - Published 15 April, 2024
Avraham Moriel, Edan Lerner, and Eran Bouchbinder
Phys. Rev. Research 6, 023053 (2024) - Published 15 April, 2024
L. Friedland and A. G. Shagalov
Phys. Rev. Research 6, 023054 (2024) - Published 15 April, 2024
Andrew S. Darmawan, Yoshifumi Nakata, Shiro Tamiya, and Hayata Yamasaki
Phys. Rev. Research 6, 023055 (2024) - Published 16 April, 2024
Daniil Ryndyk, Christian Kohlfürst, Friedemann Queisser, and Ralf Schützhold
Phys. Rev. Research 6, 023056 (2024) - Published 16 April, 2024
Riccardo Rende, Federica Gerace, Alessandro Laio, and Sebastian Goldt
Phys. Rev. Research 6, 023057 (2024) - Published 16 April, 2024
C. W. J. Beenakker
Phys. Rev. Research 6, 023058 (2024) - Published 16 April, 2024
Donghao Wang, Zixuan Ding, Mengyao Li, Yongchun Tao, and Hao Fu
Phys. Rev. Research 6, 023059 (2024) - Published 16 April, 2024
Hiroyuki Tajima, Yuta Sekino, Daisuke Inotani, Akira Dohi, Shigehiro Nagataki, and Tomoya Hayata
Phys. Rev. Research 6, 023060 (2024) - Published 17 April, 2024
Elena Arenskötter, Stephan Kucera, Omar Elshehy, Max Bergerhoff, Matthias Kreis, Léandre Brunel, and Jürgen Eschner
Phys. Rev. Research 6, 023061 (2024) - Published 17 April, 2024
Kanad Pathak, Satyam Puri, and Ravi Pant
Phys. Rev. Research 6, 023062 (2024) - Published 18 April, 2024
Jernej Rudi Finžgar, Martin J. A. Schuetz, J. Kyle Brubaker, Hidetoshi Nishimori, and Helmut G. Katzgraber
Phys. Rev. Research 6, 023063 (2024) - Published 18 April, 2024
Svend Krøjer, Anders Enevold Dahl, Kasper Sangild Christensen, Morten Kjaergaard, and Karsten Flensberg
Phys. Rev. Research 6, 023064 (2024) - Published 18 April, 2024
Cheng-En Tsai, Wei-Chih Li, H.-C. Fan-Chiang, Pai-Yi Hsiao, and Jih-Chiang Tsai
Phys. Rev. Research 6, 023065 (2024) - Published 18 April, 2024
Xue-Feng Pan, Xin-Lei Hei, Xiao-Yu Yao, Jia-Qiang Chen, Yu-Meng Ren, Xing-Liang Dong, Yi-Fan Qiao, and Peng-Bo Li
Phys. Rev. Research 6, 023067 (2024) - Published 18 April, 2024
Urban Duh and Marko Žnidarič
Phys. Rev. Research 6, 023068 (2024) - Published 19 April, 2024
Pablo Bermejo, Borja Aizpurua, and Román Orús
Phys. Rev. Research 6, 023069 (2024) - Published 19 April, 2024
Matteo Sireci and Miguel A. Muñoz
Phys. Rev. Research 6, 023070 (2024) - Published 19 April, 2024
Teodor Strömberg, Peter Schiansky, Marco Túlio Quintino, Michael Antesberger, Lee A. Rozema, Iris Agresti, Časlav Brukner, and Philip Walther
Phys. Rev. Research 6, 023071 (2024) - Published 19 April, 2024
Luca Gravina and Vincenzo Savona
Phys. Rev. Research 6, 023072 (2024) - Published 19 April, 2024
L. Cheng, T. Xiang, and J. Qi
Phys. Rev. Research 6, 023073 (2024) - Published 22 April, 2024
Gabriel Lazrak, Börge Göbel, Agnès Barthélémy, Ingrid Mertig, Annika Johansson, and Manuel Bibes
Phys. Rev. Research 6, 023074 (2024) - Published 22 April, 2024
Xiaoyu Liu, Niv Bharos, Liubov Markovich, and Johannes Borregaard
Phys. Rev. Research 6, 023075 (2024) - Published 22 April, 2024
Lara C. P. dos Santos, Tian Hang, Roland Sandt, Martin Finsterbusch, Yann Le Bouar, and Robert Spatschek
Phys. Rev. Research 6, 023076 (2024) - Published 22 April, 2024
Jonas Bley, Eva Rexigel, Alda Arias, Nikolas Longen, Lars Krupp, Maximilian Kiefer-Emmanouilidis, Paul Lukowicz, Anna Donhauser, Stefan Küchemann, Jochen Kuhn, and Artur Widera
Phys. Rev. Research 6, 023077 (2024) - Published 22 April, 2024
Isabel Cardoso Barbosa, Jonas Gutsche, Dennis Lönard, Stefan Dix, and Artur Widera
Phys. Rev. Research 6, 023078 (2024) - Published 22 April, 2024
Sebastian Golat, Jack J. Kingsley-Smith, Iago Diez, Josep Martinez-Romeu, Alejandro Martínez, and Francisco J. Rodríguez-Fortuño
Phys. Rev. Research 6, 023079 (2024) - Published 22 April, 2024
András L. Szabó, Mark H. Fischer, and Manfred Sigrist
Phys. Rev. Research 6, 023080 (2024) - Published 22 April, 2024
Longwen Zhou
Phys. Rev. Research 6, 023081 (2024) - Published 22 April, 2024
Lorenzo Del Re and Laura Classen
Phys. Rev. Research 6, 023082 (2024) - Published 22 April, 2024
Leonardo Biagetti, Guillaume Cecile, and Jacopo De Nardis
Phys. Rev. Research 6, 023083 (2024) - Published 22 April, 2024
Wei-Ming Chen and Pin-Ju Tsai
Phys. Rev. Research 6, 023084 (2024) - Published 22 April, 2024
This article uses an optimization algorithm to obtain single-mode Optical Probe States and provides a physical interpretation of these.
Flavio Del Santo, Jakub Czartowski, Karol Życzkowski, and Nicolas Gisin
Phys. Rev. Research 6, 023085 (2024) - Published 23 April, 2024
Attila Szolnoki and Xiaojie Chen
Phys. Rev. Research 6, 023087 (2024) - Published 23 April, 2024
Xuan Zuo, Zhi-Yuan Fan, Hang Qian, and Jie Li
Phys. Rev. Research 6, 023089 (2024) - Published 23 April, 2024
Matthew Girling, Cristina Cîrstoiu, and David Jennings
Phys. Rev. Research 6, 023090 (2024) - Published 24 April, 2024
Giulia Gemme, Michele Grossi, Sofia Vallecorsa, Maura Sassetti, and Dario Ferraro
Phys. Rev. Research 6, 023091 (2024) - Published 24 April, 2024
Alba Crescente, Dario Ferraro, and Maura Sassetti
Phys. Rev. Research 6, 023092 (2024) - Published 24 April, 2024
Ming Cheng, Run Lv, Xuan Luo, Zhongzhu Jiang, Wei Wang, Tianyang Wang, Lanxin Liu, Nan Zhou, Ranran Zhang, Wenhai Song, Wenjian Lu, and Yuping Sun
Phys. Rev. Research 6, 023093 (2024) - Published 25 April, 2024
William M. Strickland, Lukas J. Baker, Jaewoo Lee, Krishna Dindial, Bassel Heiba Elfeky, Patrick J. Strohbeen, Mehdi Hatefipour, Peng Yu, Ido Levy, Jacob Issokson, Vladimir E. Manucharyan, and Javad Shabani
Phys. Rev. Research 6, 023094 (2024) - Published 25 April, 2024
Kazuaki Takasan, Kyosuke Adachi, and Kyogo Kawaguchi
Phys. Rev. Research 6, 023096 (2024) - Published 26 April, 2024
Boyuan Shi and Florian Mintert
Phys. Rev. Research 6, 023097 (2024) - Published 29 April, 2024
Yingli Yang, Zongkang Zhang, Anbang Wang, Xiaosi Xu, Xiaoting Wang, and Ying Li
Phys. Rev. Research 6, 023098 (2024) - Published 29 April, 2024
Kohei Yamagami, Hiroki Ueda, Urs Staub, Yujun Zhang, Kohei Yamamoto, Sang Han Park, Soonnam Kwon, Akihiro Mitsuda, Hirofumi Wada, Takayuki Uozumi, Kojiro Mimura, and Hiroki Wadati
Phys. Rev. Research 6, 023099 (2024) - Published 29 April, 2024
Alberto Hijano, Stefan Ilić, and F. Sebastián Bergeret
Phys. Rev. Research 6, 023100 (2024) - Published 29 April, 2024
Ludovic Rapp, Takeshi Matsuoka, Konstantin L. Firestein, Daisuke Sagae, Hideaki Habara, Keiichiro Mukai, Kazuo A. Tanaka, Eugene G. Gamaly, Ryosuke Kodama, Yusuke Seto, Takahisa Shobu, Aki Tominaga, Lachlan Smillie, Tatiana Pikuz, Bianca Haberl, Toshinori Yabuuchi, Tadashi Togashi, Yuichi Inubushi, Makina Yabashi, Saulius Juodkazis, Dmitri V. Golberg, Andrei V. Rode, and Norimasa Ozaki
Phys. Rev. Research 6, 023101 (2024) - Published 29 April, 2024
Yi Tan, Ji-Yao Chen, Didier Poilblanc, and Jia-Wei Mei
Phys. Rev. Research 6, 023102 (2024) - Published 30 April, 2024
Samuel Hidalgo-Caballero, Alvaro Cassinelli, Emmanuel Fort, and Matthieu Labousse
Phys. Rev. Research 6, 023103 (2024) - Published 26 April, 2024
Tao Wen, Eugene V. Koonin, and Kang Hao Cheong
Phys. Rev. Research 6, 023104 (2024) - Published 30 April, 2024
Maximilian F. Holst, Manfred Sigrist, and Kirill V. Samokhin
Phys. Rev. Research 6, 023105 (2024) - Published 30 April, 2024
E. Mönch, S. Schweiss, I. Yahniuk, M. L. Savchenko, I. A. Dmitriev, A. Shuvaev, A. Pimenov, D. Schuh, D. Bougeard, and S. D. Ganichev
Phys. Rev. Research 6, 023106 (2024) - Published 1 May, 2024
Marco Salvalaglio, Dominic J. Skinner, Jörn Dunkel, and Axel Voigt
Phys. Rev. Research 6, 023107 (2024) - Published 1 May, 2024
Johannes Giebelmann, Johannes Bachler, and Thomas Loerting
Phys. Rev. Research 6, 023108 (2024) - Published 1 May, 2024
Taro Nakajima, Masao Watanabe, Yasuhiro Inamura, Kazuki Matsui, Tomoki Kanda, Tetsuya Nomoto, Kazuki Ohishi, Yukihiko Kawamura, Hiraku Saito, Hiromu Tamatsukuri, Noriki Terada, and Yoshimitsu Kohama
Phys. Rev. Research 6, 023109 (2024) - Published 1 May, 2024
Rihito Sakurai, Oliver J. Backhouse, George H. Booth, Wataru Mizukami, and Hiroshi Shinaoka
Phys. Rev. Research 6, 023110 (2024) - Published 1 May, 2024
Marina Fernández Galán, Enrique Conejero Jarque, and Julio San Roman
Phys. Rev. Research 6, 023111 (2024) - Published 1 May, 2024
I. Ishant, T. Shiroka, O. Stockert, V. Fritsch, and M. Majumder
Phys. Rev. Research 6, 023112 (2024) - Published 1 May, 2024
Nishant Agarwal and Yi-Zen Chu
Phys. Rev. Research 6, 023113 (2024) - Published 1 May, 2024
Muhammad S. Hasan, T. Fogarty, J. Li, A. Ruschhaupt, and Th. Busch
Phys. Rev. Research 6, 023114 (2024) - Published 1 May, 2024
Haicen Yue, Justin C. Burton, and Daniel M. Sussman
Phys. Rev. Research 6, 023115 (2024) - Published 1 May, 2024
C. Reichhardt and C. J. O. Reichhardt
Phys. Rev. Research 6, 023116 (2024) - Published 2 May, 2024
M. Stekiel, P. Čermák, C. Franz, M. Meven, D. Legut, W. Simeth, U. B. Hansen, B. Fåk, S. Weber, R. Schönmann, V. Kumar, K. Nemkovski, H. Deng, A. Bauer, C. Pfleiderer, and A. Schneidewind
Phys. Rev. Research 6, 023117 (2024) - Published 2 May, 2024
Qiyao Liang, Yiqing Zhou, Archismita Dalal, and Peter Johnson
Phys. Rev. Research 6, 023118 (2024) - Published 2 May, 2024
Matthew J. Hurley, Christian P. N. Tanner, Joshua Portner, James K. Utterback, Igor Coropceanu, Avishek Das, Joseph D. Slivka, Andrei Fluerasu, Yanwen Sun, Sanghoon Song, Leo M. Hamerlynck, Alexander H. Miller, Priyadarshini Bhattacharyya, Dmitri V. Talapin, Garth J. Williams, Naomi S. Ginsberg, and Samuel W. Teitelbaum
Phys. Rev. Research 6, 023119 (2024) - Published 3 May, 2024
Amit Anand, Jack Davis, and Shohini Ghose
Phys. Rev. Research 6, 023120 (2024) - Published 3 May, 2024
A. D. Levin, G. M Gusev, F. G. G. Hernandez, E. B. Olshanetsky, V. M. Kovalev, M. V. Entin, and N. N. Mikhailov
Phys. Rev. Research 6, 023121 (2024) - Published 3 May, 2024
Tianming Li, Hong Yang, Maohua Wang, Chengping Yin, Tinggui Zhang, and Yan Zhang
Phys. Rev. Research 6, 023122 (2024) - Published 3 May, 2024
Zi-Yong Ge, Heng Fan, and Franco Nori
Phys. Rev. Research 6, 023123 (2024) - Published 3 May, 2024
Germán Blesio, Sophie Beck, Olivier Gingras, Antoine Georges, and Jernej Mravlje
Phys. Rev. Research 6, 023124 (2024) - Published 3 May, 2024
Gilles Parez and William Witczak-Krempa
Phys. Rev. Research 6, 023125 (2024) - Published 3 May, 2024
Christian R. Ast, Piotr Kot, Maneesha Ismail, Sebastián de-la-Peña, Antonio I. Fernández-Domínguez, and Juan Carlos Cuevas
Phys. Rev. Research 6, 023126 (2024) - Published 6 May, 2024
A. de Oliveira Junior, Martí Perarnau-Llobet, Nicolas Brunner, and Patryk Lipka-Bartosik
Phys. Rev. Research 6, 023127 (2024) - Published 6 May, 2024
Illya V. Lukin, Andrii G. Sotnikov, Jacob M. Leamer, Alicia B. Magann, and Denys I. Bondar
Phys. Rev. Research 6, 023128 (2024) - Published 6 May, 2024
Yunzhe Zheng and Keita Kanno
Phys. Rev. Research 6, 023129 (2024) - Published 6 May, 2024
David Linteau, Stefano Barison, Netanel H. Lindner, and Giuseppe Carleo
Phys. Rev. Research 6, 023130 (2024) - Published 6 May, 2024
Roxana Zeraati, Victor Buendía, Tatiana A. Engel, and Anna Levina
Phys. Rev. Research 6, 023131 (2024) - Published 6 May, 2024
Roopayan Ghosh and Sougato Bose
Phys. Rev. Research 6, 023132 (2024) - Published 6 May, 2024
Ryo Makuta and Chisa Hotta
Phys. Rev. Research 6, 023133 (2024) - Published 7 May, 2024
P. Bevington, J. Nicholson, J. D. Zipfel, W. Chalupczak, C. Mishra, and V. Guarrera
Phys. Rev. Research 6, 023134 (2024) - Published 6 May, 2024
Clement Ehrhardt and Jonas Larson
Phys. Rev. Research 6, 023135 (2024) - Published 6 May, 2024
Po-Rong Lai, Jhen-Dong Lin, Yi-Te Huang, Hsien-Chao Jan, and Yueh-Nan Chen
Phys. Rev. Research 6, 023136 (2024) - Published 7 May, 2024
How to quick charge a quantum battery by using superposition of trajectories is shown. The proposed charging protocols have been verified on IBMQ and IonQ quantum processors.
Lilith Zschetzsche and Robert E. Zillich
Phys. Rev. Research 6, 023137 (2024) - Published 7 May, 2024
Alisher Duspayev, Ryan Cardman, David A. Anderson, and Georg Raithel
Phys. Rev. Research 6, 023138 (2024) - Published 7 May, 2024
Jingxu Bai, Yuechun Jiao, Rong Song, Georg Raithel, Suotang Jia, and Jianming Zhao
Phys. Rev. Research 6, 023139 (2024) - Published 8 May, 2024
E. Slootman, W. Cherifi, L. Eek, R. Arouca, E. J. Bergholtz, M. Bourennane, and C. Morais Smith
Phys. Rev. Research 6, 023140 (2024) - Published 8 May, 2024
Brittany Richman, Sohitri Ghosh, Daniel Carney, Gerard Higgins, Peter Shawhan, C. J. Lobb, and Jacob M. Taylor
Phys. Rev. Research 6, 023141 (2024) - Published 8 May, 2024
M. S. Najafabadi, L. L. Sánchez-Soto, J. F. Corney, N. Kalinin, A. A. Sorokin, and G. Leuchs
Phys. Rev. Research 6, 023142 (2024) - Published 8 May, 2024
H. Poole, M. K. Ginnane, M. Millot, H. M. Bellenbaum, G. W. Collins, S. X. Hu, D. Polsin, R. Saha, J. Topp-Mugglestone, T. G. White, D. A. Chapman, J. R. Rygg, S. P. Regan, and G. Gregori
Phys. Rev. Research 6, 023144 (2024) - Published 8 May, 2024
Fumika Suzuki, S. A. Shah, Diego A. R. Dalvit, and Markus Arndt
Phys. Rev. Research 6, 023145 (2024) - Published 9 May, 2024
Joey Li, Giuliano Giudici, and Hannes Pichler
Phys. Rev. Research 6, 023146 (2024) - Published 9 May, 2024
N. S. Baßler, I. Varma, M. Proske, P. Windpassinger, K. P. Schmidt, and C. Genes
Phys. Rev. Research 6, 023147 (2024) - Published 9 May, 2024
Felix Binkowski, Julius Kullig, Fridtjof Betz, Lin Zschiedrich, Andrea Walther, Jan Wiersig, and Sven Burger
Phys. Rev. Research 6, 023148 (2024) - Published 9 May, 2024
Zeng-Zhao Li and K. Birgitta Whaley
Phys. Rev. Research 6, 023149 (2024) - Published 10 May, 2024
Yuhei Yamauchi, Atsuki Hishida, Takashi Okada, and Atsushi Mochizuki
Phys. Rev. Research 6, 023150 (2024) - Published 10 May, 2024
Hao Zhu, Yu-Quan Ma, Wen-Kai Bai, Yan-Mei Yu, Fang-Fu Ye, Yong-Yao Li, Lin Zhuang, and Wu-Ming Liu
Phys. Rev. Research 6, 023151 (2024) - Published 10 May, 2024
B. Barbosa, M. Vranic, K. Weichman, D. Ramsey, and J. P. Palastro
Phys. Rev. Research 6, 023152 (2024) - Published 10 May, 2024
Albert Koop, Alexander Altmann, Dmitriy A. Kozlov, Nikolay N. Mikhailov, Sergey A. Dvoretskii, and Dieter Weiss
Phys. Rev. Research 6, 023153 (2024) - Published 10 May, 2024
Chang Hoong Chow, Boon Long Ng, Vindhiya Prakash, and Christian Kurtsiefer
Phys. Rev. Research 6, 023154 (2024) - Published 13 May, 2024
Cooling by electromagnetically induced transparency is experimentally demonstrated with an optically trapped single neutral atom. The Fano resonance feature is resolved in the fluorescence excitation spectra and the temperature profiles.
Jan M. Kaspari, Thomas K. Bracht, Katarina Boos, Sang Kyu Kim, Friedrich Sbresny, Kai Müller, and Doris E. Reiter
Phys. Rev. Research 6, 023155 (2024) - Published 13 May, 2024
Serge Deside, Matthieu Arnhem, Célia Griffet, and Nicolas J. Cerf
Phys. Rev. Research 6, 023156 (2024) - Published 13 May, 2024
Xin-Hai Tong
Phys. Rev. Research 6, 023157 (2024) - Published 13 May, 2024
Yizeng Li and Sean X. Sun
Phys. Rev. Research 6, 023158 (2024) - Published 13 May, 2024
E. Medina-Guerra, Parveen Kumar, I. V. Gornyi, and Yuval Gefen
Phys. Rev. Research 6, 023159 (2024) - Published 13 May, 2024
Sourav Nandy, Markus Schmitt, Marin Bukov, and Zala Lenarčič
Phys. Rev. Research 6, 023160 (2024) - Published 13 May, 2024
Alireza F. Behbahani, Petra Bačová, Patrycja Polińska, Craig Burkhart, Manolis Doxastakis, and Vagelis Harmandaris
Phys. Rev. Research 6, 023161 (2024) - Published 13 May, 2024
C. Han, M. Wang, B. Zhang, M. I. Dykman, and H. B. Chan
Phys. Rev. Research 6, 023162 (2024) - Published 13 May, 2024
Jean-Baptiste Morée, Youhei Yamaji, and Masatoshi Imada
Phys. Rev. Research 6, 023163 (2024) - Published 13 May, 2024
Giuseppe Baio and Magnus O. Borgh
Phys. Rev. Research 6, 023164 (2024) - Published 13 May, 2024
Charles Garcion, Quentin Bouton, Julien Lecoffre, Nathalie Fabre, Éric Charron, Gabriel Dutier, and Naceur Gaaloul
Phys. Rev. Research 6, 023165 (2024) - Published 13 May, 2024
Hiromi Ebisu, Masazumi Honda, and Taiichi Nakanishi
Phys. Rev. Research 6, 023166 (2024) - Published 13 May, 2024
Avraham Moriel, David Richard, Edan Lerner, and Eran Bouchbinder
Phys. Rev. Research 6, 023167 (2024) - Published 13 May, 2024
B. Ostahie and A. Aldea
Phys. Rev. Research 6, 023168 (2024) - Published 14 May, 2024
Feng-Li Lin and Ching-Yu Huang
Phys. Rev. Research 6, 023169 (2024) - Published 14 May, 2024
Zhenyong Xue, Hao Sun, Haiyan Hong, Zhuwei Zhang, Yuhang Zhang, Zilong Guo, Shimin Le, and Hu Chen
Phys. Rev. Research 6, 023170 (2024) - Published 14 May, 2024
James Sud, Stuart Hadfield, Eleanor Rieffel, Norm Tubman, and Tad Hogg
Phys. Rev. Research 6, 023171 (2024) - Published 15 May, 2024
Jingyi Gao and Naomichi Hatano
Phys. Rev. Research 6, 023172 (2024) - Published 15 May, 2024
Atsushi Kamimura, Yuki Sughiyama, and Tetsuya J. Kobayashi
Phys. Rev. Research 6, 023173 (2024) - Published 16 May, 2024
Julius Degünther, Jann van der Meer, and Udo Seifert
Phys. Rev. Research 6, 023175 (2024) - Published 16 May, 2024
Luca Lumia, Emanuele Tirrito, Rosario Fazio, and Mario Collura
Phys. Rev. Research 6, 023176 (2024) - Published 16 May, 2024
Juefei Wu, Bangshuai Zhu, Chi Ding, Dexi Shao, Cuiying Pei, Qi Wang, Jian Sun, and Yanpeng Qi
Phys. Rev. Research 6, 023177 (2024) - Published 16 May, 2024
Tuomas I. Vanhala and Teemu Ojanen
Phys. Rev. Research 6, 023178 (2024) - Published 16 May, 2024
Tyler G. Thurtell and Akimasa Miyake
Phys. Rev. Research 6, 023179 (2024) - Published 16 May, 2024
F. Pauw, F. A. Palm, U. Schollwöck, A. Bohrdt, S. Paeckel, and F. Grusdt
Phys. Rev. Research 6, 023180 (2024) - Published 17 May, 2024
Quoc Hoan Tran, Shinji Kikuchi, and Hirotaka Oshima
Phys. Rev. Research 6, 023181 (2024) - Published 17 May, 2024
H. K. Schubert, D. J. Engels, R. A. Meijer, B. Liu, and O. O. Versolato
Phys. Rev. Research 6, 023182 (2024) - Published 17 May, 2024
J. Sánchez-Baena, T. Pohl, and F. Maucher
Phys. Rev. Research 6, 023183 (2024) - Published 17 May, 2024
Alexander Hrabski and Yulin Pan
Phys. Rev. Research 6, 023184 (2024) - Published 20 May, 2024
Zeeshan Ahmad, Sang Soon Oh, and Egor A. Muljarov
Phys. Rev. Research 6, 023185 (2024) - Published 20 May, 2024
Jiaxing Yuan and Hajime Tanaka
Phys. Rev. Research 6, 023186 (2024) - Published 20 May, 2024
Yosef Ashkenazy and Naftali R. Smith
Phys. Rev. Research 6, 023187 (2024) - Published 20 May, 2024
A method for predicting annual rain distributions, based on combining monthly rain histograms from historical data, is introduced and applied to several locations in Israel. It is then argued (using tests of the method in a simple toy model) that the method gives reliable predictions not only for typical events but also for rare ones.
Peter Schmelcher
Phys. Rev. Research 6, 023188 (2024) - Published 20 May, 2024
Maria Panoukidou, Simon Weir, Valerio Sorichetti, Yair Gutierrez Fosado, Martin Lenz, and Davide Michieletto
Phys. Rev. Research 6, 023189 (2024) - Published 20 May, 2024
Filippo Gaggioli, Gianni Blatter, Kostya S. Novoselov, and Vadim B. Geshkenbein
Phys. Rev. Research 6, 023190 (2024) - Published 20 May, 2024
Kohei Morimoto, Yusuke Takase, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 6, 023191 (2024) - Published 20 May, 2024
Zhongdong Han, Tingxin Li, Long Zhang, and Rui-Rui Du
Phys. Rev. Research 6, 023192 (2024) - Published 20 May, 2024
Ruizhi Pan and Charles W. Clark
Phys. Rev. Research 6, 023193 (2024) - Published 20 May, 2024
Mingyang Qin, Ruozhou Zhang, Chaoran Miao, Zhongxu Wei, Yujun Shi, Yixuan Yao, Haowen Wang, Yangmu Li, Kui Jin, and Xiaodong Xiang
Phys. Rev. Research 6, 023194 (2024) - Published 20 May, 2024
Shahriar Shadkhoo and Matt Thomson
Phys. Rev. Research 6, 023195 (2024) - Published 21 May, 2024
Ivan Morera, Annabelle Bohrdt, Wen Wei Ho, and Eugene Demler
Phys. Rev. Research 6, 023196 (2024) - Published 21 May, 2024
A. Uranga, E. Akhmatskaya, and D. Sokolovski
Phys. Rev. Research 6, 023197 (2024) - Published 21 May, 2024
Lan Bo, Xichao Zhang, Masahito Mochizuki, and Xuefeng Zhang
Phys. Rev. Research 6, 023199 (2024) - Published 22 May, 2024
Jonah S. Peter, Stefan Ostermann, and Susanne F. Yelin
Phys. Rev. Research 6, 023200 (2024) - Published 22 May, 2024
Federico Belliardo, Valeria Cimini, Emanuele Polino, Francesco Hoch, Bruno Piccirillo, Nicolò Spagnolo, Vittorio Giovannetti, and Fabio Sciarrino
Phys. Rev. Research 6, 023201 (2024) - Published 23 May, 2024
Chao Chen Ye, W. L. Vleeshouwers, S. Heatley, V. Gritsev, and C. Morais Smith
Phys. Rev. Research 6, 023202 (2024) - Published 23 May, 2024
Federico Escudero, Andreas Sinner, Zhen Zhan, Pierre A. Pantaleón, and Francisco Guinea
Phys. Rev. Research 6, 023203 (2024) - Published 23 May, 2024
Lukas Kienesberger, Thomas Juffmann, and Stefan Nimmrichter
Phys. Rev. Research 6, 023204 (2024) - Published 23 May, 2024
Anton Montag and Flore K. Kunst
Phys. Rev. Research 6, 023205 (2024) - Published 23 May, 2024
Stefan Ostermann, Oriol Rubies-Bigorda, Victoria Zhang, and Susanne F. Yelin
Phys. Rev. Research 6, 023206 (2024) - Published 23 May, 2024
Adrián Juan-Delgado, Ruben Esteban, Álvaro Nodar, Jean-Baptiste Trebbia, Brahim Lounis, and Javier Aizpurua
Phys. Rev. Research 6, 023207 (2024) - Published 24 May, 2024
Hu Zhang, Lulu Zhao, RuiFeng Zhang, Chendong Jin, Ruqian Lian, Peng-Lai Gong, RuiNing Wang, JiangLong Wang, and Xing-Qiang Shi
Phys. Rev. Research 6, 023208 (2024) - Published 24 May, 2024
Ben Currie and Evgeny Kozik
Phys. Rev. Research 6, 023210 (2024) - Published 24 May, 2024
Tristan da Câmara Santa Clara Gomes, Nicolas Marchal, Anatole Moureaux, Simon de Wergifosse, Chloé Chopin, Luc Piraux, Joaquín de la Torre Medina, and Flavio Abreu Araujo
Phys. Rev. Research 6, 023211 (2024) - Published 24 May, 2024
Juan Salvador-Sánchez, Luis M. Canonico, Ana Pérez-Rodríguez, Tarik P. Cysne, Yuriko Baba, Vito Clericò, Marc Vila, Daniel Vaquero, Juan Antonio Delgado-Notario, José M. Caridad, Kenji Watanabe, Takashi Taniguchi, Rafael A. Molina, Francisco Domínguez-Adame, Stephan Roche, Enrique Diez, Tatiana G. Rappoport, and Mario Amado
Phys. Rev. Research 6, 023212 (2024) - Published 28 May, 2024
W. Alvarez-Giron, P. Solano, K. Sinha, and P. Barberis-Blostein
Phys. Rev. Research 6, 023213 (2024) - Published 28 May, 2024
Zecheng Zhang, Chunxiuzi Liu, Yingjun Zhu, Lu Peng, Weiyi Qiu, Qianyuan Tang, He Liu, Ke Zhang, Zengru Di, and Yu Liu
Phys. Rev. Research 6, 023215 (2024) - Published 28 May, 2024
Liying Bao, Bo Qi, Franco Nori, and Daoyi Dong
Phys. Rev. Research 6, 023216 (2024) - Published 28 May, 2024
Chen Li, Qi Liang, Pradyumna Paranjape, RuGway Wu, and Jörg Schmiedmayer
Phys. Rev. Research 6, 023217 (2024) - Published 28 May, 2024
Seongwook Shin, Yong Siah Teo, and Hyunseok Jeong
Phys. Rev. Research 6, 023218 (2024) - Published 29 May, 2024
Zhandos A. Moldabekov, Thomas D. Gawne, Sebastian Schwalbe, Thomas R. Preston, Jan Vorberger, and Tobias Dornheim
Phys. Rev. Research 6, 023219 (2024) - Published 31 May, 2024
E. S. Sedov, M. M. Glazov, P. G. Lagoudakis, and A. V. Kavokin
Phys. Rev. Research 6, 023220 (2024) - Published 31 May, 2024
Ephraim Bernhardt, Brian Chung Hang Cheung, and Karyn Le Hur
Phys. Rev. Research 6, 023221 (2024) - Published 31 May, 2024
Rei Nishinakayama, Yoshiki J. Sato, Takayoshi Yamanaka, Yoshiteru Maeno, Hiroshi Yaguchi, Naoki Kikugawa, and Ryuji Okazaki
Phys. Rev. Research 6, 023222 (2024) - Published 31 May, 2024
Thomas J. Hamlyn, Chi Zhang, Igor Lesanovsky, and Weibin Li
Phys. Rev. Research 6, 023223 (2024) - Published 31 May, 2024
Shi-Zeng Lin
Phys. Rev. Research 6, 023224 (2024) - Published 3 June, 2024
Wonjun Lee, Sungwon Yoon, Sungmin Jeon, Yipeng Cai, Kenji Kojima, Gerald D. Morris, Bassam Hitti, Loi T. Nguyen, R. J. Cava, Kwang-Yong Choi, and Suheon Lee
Phys. Rev. Research 6, 023225 (2024) - Published 3 June, 2024
Arthur L. da Fonseca, Kainã Diniz, Paula B. Monteiro, Luís B. Pires, Guilherme T. Moura, Mateus Borges, Rafael S. Dutra, Diney S. Ether, Jr., Nathan B. Viana, and Paulo A. Maia Neto
Phys. Rev. Research 6, 023226 (2024) - Published 3 June, 2024
Jing Chen, E. Miles Stoudenmire, Yashar Komijani, and Piers Coleman
Phys. Rev. Research 6, 023227 (2024) - Published 3 June, 2024
Giulio Tirabassi
Phys. Rev. Research 6, 023228 (2024) - Published 3 June, 2024
Yifeng Yang, Zhenyu Xu, and Adolfo del Campo
Phys. Rev. Research 6, 023229 (2024) - Published 3 June, 2024
Luca Erhart, Yuichiro Yoshida, Viktor Khinevich, and Wataru Mizukami
Phys. Rev. Research 6, 023230 (2024) - Published 3 June, 2024
A. Li, B.-B. Liu, L.-L. Yan, S.-L. Su, Gang Chen, and M. Feng
Phys. Rev. Research 6, 023231 (2024) - Published 3 June, 2024
Shao-Hong Chung, I Gusti Ngurah Yudi Handayana, Yi-Lin Tsao, Chun-Chi Wu, G.-D. Lin, and H. H. Jen
Phys. Rev. Research 6, 023232 (2024) - Published 3 June, 2024
Maximilian E. Merkel, Aria Mansouri Tehrani, and Claude Ederer
Phys. Rev. Research 6, 023233 (2024) - Published 3 June, 2024
Jeremias Gonzalez, Ajay Gopinathan, and Bin Liu
Phys. Rev. Research 6, 023234 (2024) - Published 3 June, 2024
David Llamas, Jaron Kent-Dobias, Kun Chen, Adrian Kent, and Olga Goulko
Phys. Rev. Research 6, 023235 (2024) - Published 3 June, 2024
Sophie Klempahn, Ralf Blossey, and Helmut Schiessel
Phys. Rev. Research 6, 023236 (2024) - Published 3 June, 2024
JunJie Chen and Konstantin Dorfman
Phys. Rev. Research 6, 023237 (2024) - Published 3 June, 2024
Oriana K. Diessel, Jonas von Milczewski, Arthur Christianen, and Richard Schmidt
Phys. Rev. Research 6, 023239 (2024) - Published 3 June, 2024
Alberto Carta, Anwesha Panda, and Claude Ederer
Phys. Rev. Research 6, 023240 (2024) - Published 3 June, 2024
Juyoung Park, Seokho Jeong, Minhyuk Kim, Kangheun Kim, Andrew Byun, Louis Vignoli, Louis-Paul Henry, Loïc Henriet, and Jaewook Ahn
Phys. Rev. Research 6, 023241 (2024) - Published 4 June, 2024
D. M. Kirschbaum, X. Yan, M. Waas, R. Svagera, A. Prokofiev, B. Stöger, G. Giester, P. Rogl, D.-G. Oprea, C. Felser, R. Valentí, M. G. Vergniory, J. Custers, S. Paschen, and D. A. Zocco
Phys. Rev. Research 6, 023242 (2024) - Published 4 June, 2024
Ayaka Usui, Anna Sanpera, and María García Díaz
Phys. Rev. Research 6, 023243 (2024) - Published 4 June, 2024
Álvaro R. Puente-Uriona, Giulio Pettini, and Michele Modugno
Phys. Rev. Research 6, 023244 (2024) - Published 4 June, 2024
Ruben Sanchez-Garcia, Michael Saur, Javier Vargas, Carl Poelking, and Charlotte M. Deane
Phys. Rev. Research 6, 023245 (2024) - Published 4 June, 2024
Feliks Kivelä, Shruti Dogra, and Gheorghe Sorin Paraoanu
Phys. Rev. Research 6, 023246 (2024) - Published 4 June, 2024
Z. M. McIntyre and W. A. Coish
Phys. Rev. Research 6, 023247 (2024) - Published 4 June, 2024
Andrés Ulibarrena, Alejandro Sopena, Russell Brooks, Daniel Centeno, Joseph Ho, Germán Sierra, and Alessandro Fedrizzi
Phys. Rev. Research 6, 023248 (2024) - Published 5 June, 2024
Yiwei Liang, Xinyan Lin, Biao Wan, Zhaopeng Guo, Xuyan Cao, Dexi Shao, Jian Sun, and Huiyang Gou
Phys. Rev. Research 6, 023249 (2024) - Published 5 June, 2024
Victor Wei, W. A. Coish, Pooya Ronagh, and Christine A. Muschik
Phys. Rev. Research 6, 023250 (2024) - Published 6 June, 2024
Markus Kraft, Jonas Richter, Fengping Jin, Sourav Nandy, Jacek Herbrych, Kristel Michielsen, Hans De Raedt, Jochen Gemmer, and Robin Steinigeweg
Phys. Rev. Research 6, 023251 (2024) - Published 6 June, 2024
Menahem Krief and Yinon Ashkenazy
Phys. Rev. Research 6, 023253 (2024) - Published 6 June, 2024
Matthew D. Frye, Piotr S. Żuchowski, and Michał Tomza
Phys. Rev. Research 6, 023254 (2024) - Published 6 June, 2024
Amy Altshuler, Ofek Lauber Bonomo, Nicole Gorohovsky, Shany Marchini, Eran Rosen, Ofir Tal-Friedman, Shlomi Reuveni, and Yael Roichman
Phys. Rev. Research 6, 023255 (2024) - Published 6 June, 2024
Jun-Ang Wang, Mohamed Assili, and Panagiotis Kotetes
Phys. Rev. Research 6, 023256 (2024) - Published 6 June, 2024
Giulia Janzen and Liesbeth M. C. Janssen
Phys. Rev. Research 6, 023257 (2024) - Published 7 June, 2024
Tingting Liu, Jie Li, and Shuyuan Xiao
Phys. Rev. Research 6, 023258 (2024) - Published 7 June, 2024
M. E. Bal, E. Cheah, Z. Lei, R. Schott, C. A. Lehner, H. Engelkamp, W. Wegscheider, and U. Zeitler
Phys. Rev. Research 6, 023259 (2024) - Published 7 June, 2024
D. Sarenac, G. Gorbet, C. Kapahi, Charles W. Clark, D. G. Cory, H. Ekinci, D. V. Garrad, M. E. Henderson, M. G. Huber, D. Hussey, P. A. Kienzle, J. D. Parker, R. Serrat, T. Shinohara, F. Song, and D. A. Pushin
Phys. Rev. Research 6, 023260 (2024) - Published 10 June, 2024
Fabian Ballar Trigueros, Tiago Mendes-Santos, and Markus Heyl
Phys. Rev. Research 6, 023261 (2024) - Published 10 June, 2024
Arto Viitanen, Timm Mörstedt, Wallace S. Teixeira, Maaria Tiiri, Jukka Räbinä, Matti Silveri, and Mikko Möttönen
Phys. Rev. Research 6, 023262 (2024) - Published 10 June, 2024
Joseph Peetz, Scott E. Smart, Spyros Tserkis, and Prineha Narang
Phys. Rev. Research 6, 023263 (2024) - Published 10 June, 2024
Wouter Buijsman
Phys. Rev. Research 6, 023264 (2024) - Published 10 June, 2024
Laura Di Domenico, Eugenio Valdano, and Vittoria Colizza
Phys. Rev. Research 6, 023265 (2024) - Published 10 June, 2024
G. Keijsers, T. Ham, Z. Geng, K. J. H. Peters, M. Wouters, and S. R. K. Rodriguez
Phys. Rev. Research 6, 023266 (2024) - Published 10 June, 2024
J. Nagl, D. Flavián, S. Hayashida, K. Yu. Povarov, M. Yan, N. Murai, S. Ohira-Kawamura, G. Simutis, T. J. Hicken, H. Luetkens, C. Baines, A. Hauspurg, B. V. Schwarze, F. Husstedt, V. Pomjakushin, T. Fennell, Z. Yan, S. Gvasaliya, and A. Zheludev
Phys. Rev. Research 6, 023267 (2024) - Published 10 June, 2024
V. Ospina-Bohórquez et al.
Phys. Rev. Research 6, 023268 (2024) - Published 11 June, 2024
Yun-Tak Oh, Jung Hoon Han, and Hyun-Yong Lee
Phys. Rev. Research 6, 023269 (2024) - Published 11 June, 2024
Kiyoshi Kanazawa and Didier Sornette
Phys. Rev. Research 6, 023270 (2024) - Published 12 June, 2024
Tarik P. Cysne, W. J. M. Kort-Kamp, and Tatiana G. Rappoport
Phys. Rev. Research 6, 023271 (2024) - Published 12 June, 2024
Gui-Sheng Xu, Mudit Jain, Xiang-Fa Zhou, Guang-Can Guo, Mustafa A. Amin, Han Pu, and Zheng-Wei Zhou
Phys. Rev. Research 6, 023272 (2024) - Published 13 June, 2024
Yichen Fu and Hong Qin
Phys. Rev. Research 6, 023273 (2024) - Published 13 June, 2024
Justin C. Tzou and Leo Tzou
Phys. Rev. Research 6, 023274 (2024) - Published 13 June, 2024
P. Androvitsaneas, A. B. Young, T. Nutz, J. M. Lennon, S. Mister, C. Schneider, M. Kamp, S. Höfling, D. P. S. McCutcheon, E. Harbord, J. G. Rarity, and R. Oulton
Phys. Rev. Research 6, 023276 (2024) - Published 14 June, 2024
Sitaram Ramakrishnan, Surya Rohith Kotla, Hanqi Pi, Bishal Baran Maity, Jia Chen, Jin-Ke Bao, Zhaopeng Guo, Masaki Kado, Harshit Agarwal, Claudio Eisele, Minoru Nohara, Leila Noohinejad, Hongming Weng, Srinivasan Ramakrishnan, Arumugam Thamizhavel, and Sander van Smaalen
Phys. Rev. Research 6, 023277 (2024) - Published 14 June, 2024
E. Senes, M. Krupa, S. Mazzoni, K. Lasocha, T. Lefevre, A. Schloegelhofer, M. Wendt, C. Davut, P. Karataev, C. Pakuza, and B. Spear
Phys. Rev. Research 6, 023278 (2024) - Published 14 June, 2024
Viktor Bekassy and Johannes Hofmann
Phys. Rev. Research 6, 023279 (2024) - Published 17 June, 2024
Santiago Hernández-Gómez, Stefano Gherardini, Alessio Belenchia, Matteo Lostaglio, Amikam Levy, and Nicole Fabbri
Phys. Rev. Research 6, 023280 (2024) - Published 14 June, 2024
Max Geier, Rubén Seoane Souto, Jens Schulenborg, Serwan Asaad, Martin Leijnse, and Karsten Flensberg
Phys. Rev. Research 6, 023281 (2024) - Published 17 June, 2024
Rabih El Sokhen, Álvaro Gómez-León, Albert F. Adiyatullin, Stéphane Randoux, Pierre Delplace, and Alberto Amo
Phys. Rev. Research 6, 023282 (2024) - Published 17 June, 2024
Paul C. Bressloff
Phys. Rev. Research 6, 023283 (2024) - Published 17 June, 2024
Yohei Zushi, Cody D. Schimming, and Kazumasa A. Takeuchi
Phys. Rev. Research 6, 023284 (2024) - Published 17 June, 2024
Marc Rovirola, M. Waqas Khaliq, Travis Gustafson, Fiona Sosa-Barth, Blai Casals, Joan Manel Hernàndez, Sandra Ruiz-Gómez, Miguel Angel Niño, Lucía Aballe, Alberto Hernández-Mínguez, Michael Foerster, and Ferran Macià
Phys. Rev. Research 6, 023285 (2024) - Published 17 June, 2024
Brendan J. Mahoney and Craig S. Lent
Phys. Rev. Research 6, 023286 (2024) - Published 17 June, 2024
Eric Chatterjee, Alexander Wendt, Daniel Soh, and Matt Eichenfield
Phys. Rev. Research 6, 023288 (2024) - Published 17 June, 2024
Perry T. Mahon, Chao Lei, and Allan H. MacDonald
Phys. Rev. Research 6, 023289 (2024) - Published 17 June, 2024
Shoichiro Tsutsui and Keita Kanno
Phys. Rev. Research 6, 023290 (2024) - Published 17 June, 2024
Giacomo Morpurgo and Thierry Giamarchi
Phys. Rev. Research 6, 023291 (2024) - Published 17 June, 2024
Haijin Ding, Re-Bing Wu, and Yu-xi Liu
Phys. Rev. Research 6, 023292 (2024) - Published 17 June, 2024
Junjie Qi, Haiwen Liu, Jie Liu, Hua Jiang, Dong E. Liu, Chui-Zhen Chen, Ke He, and X. C. Xie
Phys. Rev. Research 6, 023293 (2024) - Published 18 June, 2024
The transition from edge-dominated to bulk-dominated quantum interference patterns of supercurrents in a quantum anomalous Hall-based Josephson junction is investigated. An anomalous Fraunhofer-like pattern is observed due to the bulk carriers induced by magnetic domains, even when the chemical potential resides within the bulk gap.
Manuel H. Muñoz-Arias, Stefanos Kourtis, and Alexandre Blais
Phys. Rev. Research 6, 023294 (2024) - Published 20 June, 2024
K. J. Zhu, L. P. Nie, B. Lei, M. J. Wang, K. L. Sun, Y. Z. Deng, M. L. Tian, T. Wu, and X. H. Chen
Phys. Rev. Research 6, 023295 (2024) - Published 20 June, 2024
Sagar Silva Pratapsi, Lorenzo Buffoni, and Stefano Gherardini
Phys. Rev. Research 6, 023296 (2024) - Published 20 June, 2024
Huan-Kuang Wu, Takafumi Suzuki, Naoki Kawashima, and Wei-Lin Tu
Phys. Rev. Research 6, 023297 (2024) - Published 20 June, 2024
A perturbation theory and two numerical methodologies are adopted to study the inherent outcomes of analog quantum simulation. The degeneracy lifting due to the quantum fluctuation coincides with the one triggered by the thermal effect, selecting a stripy ground state. Potential quantum phases are also examined by a numerical tool, featuring a phase with the coexistence of two long-range orders.
Kiri Choi, Won Kyu Kim, and Changbong Hyeon
Phys. Rev. Research 6, 023298 (2024) - Published 20 June, 2024
L. Tosi, I. Lobato, M. F. Goffman, C. Metzger, C. Urbina, and H. Pothier
Phys. Rev. Research 6, 023299 (2024) - Published 20 June, 2024
Hugh G. A. Burton
Phys. Rev. Research 6, 023300 (2024) - Published 20 June, 2024
S. P. Kish, C. Thapa, M. Sayat, H. Suzuki, J. Pieprzyk, and S. Camtepe
Phys. Rev. Research 6, 023301 (2024) - Published 20 June, 2024
Jun Tsuchiya, Motoyuki Shiga, Shinji Tsuneyuki, and Elizabeth C. Thompson
Phys. Rev. Research 6, 023302 (2024) - Published 20 June, 2024
Zhenyu Xiao, Ryuichi Shindou, and Kohei Kawabata
Phys. Rev. Research 6, 023303 (2024) - Published 20 June, 2024
F. Dominguez, E. G. Novik, and P. Recher
Phys. Rev. Research 6, 023304 (2024) - Published 20 June, 2024
Jessica Bavaresco, Patryk Lipka-Bartosik, Pavel Sekatski, and Mohammad Mehboudi
Phys. Rev. Research 6, 023305 (2024) - Published 20 June, 2024
Junren Shi
Phys. Rev. Research 6, 023306 (2024) - Published 20 June, 2024
A. P. Menushenkov, A. Ivanov, V. Neverov, A. Lukyanov, A. Krasavin, A. A. Yastrebtsev, I. A. Kovalev, Y. Zhumagulov, A. V. Kuznetsov, V. Popov, G. Tselikov, I. Shchetinin, O. Krymskaya, A. Yaroslavtsev, R. Carley, L. Mercadier, Z. Yin, S. Parchenko, L. P. Hoang, N. Ghodrati, Y. Y. Kim, J. Schlappa, M. Izquierdo, S. Molodtsov, and A. Scherz
Phys. Rev. Research 6, 023307 (2024) - Published 21 June, 2024
M. Hild, I. Yahniuk, L. E. Golub, J. Amann, J. Eroms, D. Weiss, K. Watanabe, T. Taniguchi, and S. D. Ganichev
Phys. Rev. Research 6, 023308 (2024) - Published 21 June, 2024
Xiakun Chu, Cibo Feng, and Jin Wang
Phys. Rev. Research 6, 023309 (2024) - Published 21 June, 2024
Sreekanth K. Manikandan, Tanmoy Ghosh, Tithi Mandal, Arikta Biswas, Bidisha Sinha, and Dhrubaditya Mitra
Phys. Rev. Research 6, 023310 (2024) - Published 21 June, 2024
I. Korniienko, P. Nieves, A. Fraile, R. Iglesias, and D. Legut
Phys. Rev. Research 6, 023311 (2024) - Published 24 June, 2024
Shijia Hua, Mingquan Xu, Linjie Liu, and Xiaojie Chen
Phys. Rev. Research 6, 023313 (2024) - Published 24 June, 2024
Fabian Schöttke, Peter Krüger, Lutz Hammer, Tilman Kißlinger, M. Alexander Schneider, and Markus Donath
Phys. Rev. Research 6, 023314 (2024) - Published 24 June, 2024
Richard D. J. G. Ho, Stig Ove Bøe, Dag Kristian Dysthe, and Luiza Angheluta
Phys. Rev. Research 6, 023315 (2024) - Published 24 June, 2024
Alexander C. Tyner
Phys. Rev. Research 6, 023316 (2024) - Published 24 June, 2024
Gianluca Allinson, Matthew J. Jamieson, Andrew R. Mackellar, Lucy Downes, C. Stuart Adams, and Kevin J. Weatherill
Phys. Rev. Research 6, 023317 (2024) - Published 24 June, 2024
Jeremy Lantis et al.
Phys. Rev. Research 6, 023318 (2024) - Published 24 June, 2024
Madhuvanthi Guruprasad Athani and Daniel A. Beller
Phys. Rev. Research 6, 023319 (2024) - Published 24 June, 2024
Alessandro Ferreri, David Edward Bruschi, Frank K. Wilhelm, Franco Nori, and Vincenzo Macrì
Phys. Rev. Research 6, 023320 (2024) - Published 24 June, 2024
Stefano Pirandola and Panagiotis Papanastasiou
Phys. Rev. Research 6, 023321 (2024) - Published 24 June, 2024
K. Noori, B. A. Olsen, and A. Rodin
Phys. Rev. Research 6, 023322 (2024) - Published 24 June, 2024
Robbie Cruickshank, Andrea Di Carli, Matthew Mitchell, Arthur La Rooij, Stefan Kuhr, Charles E. Creffield, and Elmar Haller
Phys. Rev. Research 6, 023323 (2024) - Published 25 June, 2024
T. Zolkin, Y. Kharkov, and S. Nagaitsev
Phys. Rev. Research 6, 023324 (2024) - Published 25 June, 2024
K. Knakkergaard Nielsen
Phys. Rev. Research 6, 023325 (2024) - Published 25 June, 2024
M. Tosca, A. Morace, M. Schollmeier, S. Steinke, V. Shirvanyan, Y. Arikawa, L. Giuffrida, D. Margarone, P. Pleskunov, A. Choukourov, R. R. Whitney, L. R. Scammell, and G. Korn
Phys. Rev. Research 6, 023326 (2024) - Published 25 June, 2024
Zewen Sun, Igor A. Valuev, and Natalia S. Oreshkina
Phys. Rev. Research 6, 023327 (2024) - Published 25 June, 2024
Zhi-Jian Song, Jia-Xin Zhang, and Zheng-Yu Weng
Phys. Rev. Research 6, 023328 (2024) - Published 26 June, 2024
T. Rook, L. Cruz Rodriguez, and C. Figueira de Morisson Faria
Phys. Rev. Research 6, 023329 (2024) - Published 27 June, 2024
S. Malko, D. B. Schaeffer, W. Yao, V. Valenzuela-Villaseca, C. Johnson, G. Fiksel, A. Ciardi, and W. Fox
Phys. Rev. Research 6, 023330 (2024) - Published 27 June, 2024
Jaš Bensa
Phys. Rev. Research 6, 023331 (2024) - Published 28 June, 2024
Niklas Budinger, Akira Furusawa, and Peter van Loock
Phys. Rev. Research 6, 023332 (2024) - Published 28 June, 2024
Gunjan Auti, Soumyadeep Paul, Wei-Lun Hsu, Shohei Chiashi, Shigeo Maruyama, and Hirofumi Daiguji
Phys. Rev. Research 6, 023333 (2024) - Published 28 June, 2024
Michael Paul and Ulli Köster
Phys. Rev. Research 6, 028001 (2024) - Published 28 May, 2024
N. S. Srivatsa, Xikun Li, and Anne E. B. Nielsen
Phys. Rev. Research 6, 029001 (2024) - Published 13 May, 2024
Grace J. Li and Mason A. Porter
Phys. Rev. Research 6, 029002 (2024) - Published 18 June, 2024