Suman Kulkarni, Sophia U. David, Christopher W. Lynn, and Dani S. Bassett
Phys. Rev. Research 6, 013136 (2024) - Published 2 February, 2024
A study combines methods from network science, information theory, and cognitive science to examine the information present in note transitions within music composed by J. S. Bach. It identifies and explains differences in information content across various compositional forms based on their network structure.
Guilherme R. Fonseca, Filipa R. Prudêncio, Mário G. Silveirinha, and Paloma A. Huidobro
Phys. Rev. Research 6, 013017 (2024) - Published 5 January, 2024
A first-principles formalism that enables the topological characterization of Weyl points in three-dimensional dispersive photonic continua is introduced. The chirality of Weyl points is computed through gap Chern numbers and through direct computation of the Berry curvature, in both cases solely using the photonic Green’s function.
Esmaeel Moghimi, Iurii Chubak, Maria Kaliva, Parvin Kiany, Taihyun Chang, Junyoung Ahn, Nikolaos Patelis, Georgios Sakellariou, Sergei A. Egorov, Dimitris Vlassopoulos, and Christos N. Likos
Phys. Rev. Research 6, 013079 (2024) - Published 22 January, 2024
When nonadsorbing ring polymers are added in a fluid suspension of big, spherical colloids, solid gels are formed. Joint experimental, computational, and theoretical work shows that these gels are much stronger than those formed by the addition of linear polymer chains.
Atreyie Ghosh, Sena Yang, Yanan Dai, W. Vincent Liu, and Hrvoje Petek
Phys. Rev. Research 6, 013163 (2024) - Published 13 February, 2024
Plasmonic vortices are found to host pseudoscalar 𝙀∙𝘽 fields that are odd under parity 𝒫 and time 𝒯 inversion, but even under the joint 𝒫𝒯 symmetry, enabling them to drive the magnetoelectric response and act as a source of the axion field.
C. Wille, J. Eisert, and A. Altland
Phys. Rev. Research 6, 013302 (2024) - Published 19 March, 2024
Dualities between three paradigmatic models in condensed-matter physics (the two-dimensional classical Ising model, the toric code, and a class D topological superconductor) are explored from a tensor network perspective. Being exact and explicit in nature, the approach allows for the translation of properties of the three different systems on a microscopic level and for the linking of nontrivial phenomena such as topological excitations, edge modes, and disorder operators.
Alexey V. Scherbakov, Alex D. Carr, Tetiana L. Linnik, Serhii M. Kukhtaruk, Andrew D. Armour, Achim Nadzeyka, Andrew W. Rushforth, Andrey V. Akimov, and Manfred Bayer
Phys. Rev. Research 6, L012019 (2024) - Published 23 January, 2024
A femtosecond laser pulse triggers hybrid excitation of magnons in a ferromagnetic nanostructure via an instant broadband kick and also through quasiharmonic driving by phonons. By tuning the external magnetic field and exploiting the dependence of the phase of the broadband excitation on the laser fluence, the phase and amplitude of the coherent magnon response is manipulated.
J. Berrocal, A. Hernández, I. Arrazola, F. Domínguez, A. Carrasco-Sanz, F. J. Fernández, M. Block, and D. Rodríguez
Phys. Rev. Research 6, L012001 (2024) - Published 3 January, 2024
Optical detection is the basis of a highly sensitive method to determine directly all the eigenfrequencies of a single laser-cooled ion in a Penning trap. This is demonstrated with a cyclotron-frequency comparison between calcium isotopes with kinetic temperatures in the order of a millikelvin
Anatoli S. Kheifets
Phys. Rev. Research 6, L012002 (2024) - Published 3 January, 2024
Two-photon ionization with co- and counter-rotating circular fields allows the disentangling of the two interfering final states and the extraction of the corresponding ionization amplitudes and phases. This way, a complete photoionization experiment can be performed in two-photon XUV + IR ionization similarly to single XUV photon ionization benchmarked several decades ago.
Ammon Fischer, Lennart Klebl, Jonas B. Profe, Alexander Rothstein, Lutz Waldecker, Bernd Beschoten, Tim O. Wehling, and Dante M. Kennes
Phys. Rev. Research 6, L012003 (2024) - Published 8 January, 2024
ABCB tetralayer graphene features valley-local flat bands and van Hove singularities due to intrinsic crystal fields. This strengthens a variety of correlated states including ferri- and ferromagnetic and superconducting phases at low densities.
Lei Qi, Jae-Min Kwon, T. S. Hahm, M. Leconte, Sumin Yi, Y. W. Cho, and Janghoon Seo
Phys. Rev. Research 6, L012004 (2024) - Published 8 January, 2024
The first-principle bounce-average gyrokinetic numerical experiments investigating the isotopic dependence of energy confinement achieve a quantitative agreement with experimental empirical scaling laws in tokamak magnetic confined fusion plasmas. Mitigation of turbulence radial electric field intensity || and associated poloidal 𝗘 𝗕 fluctuating velocity with the turbulence radial correlation length strongly deviating from the gyro-Bohm scaling is identified as the principal mechanism, along with zonal flow and trapped electron turbulence stabilization, contributing to the isotope effects in tokamak plasmas.
Zheng Liu, Zhenhua Qiao, Yang Gao, and Qian Niu
Phys. Rev. Research 6, L012005 (2024) - Published 11 January, 2024
The localized hinge state of the second-order topological insulator can have a non-Abelian Berry curvature component, which can be detected by a circular photogalvanic effect, with light illuminating a specific hinge. The optical sum rule can further reflect the interstate Berry curvature between the hinge state and the ground state.
Chuyao Tong, Annika Kurzmann, Rebekka Garreis, Kenji Watanabe, Takashi Taniguchi, Thomas Ihn, and Klaus Ensslin
Phys. Rev. Research 6, L012006 (2024) - Published 11 January, 2024
In bilayer graphene, a comprehensive catalog of double quantum dot Pauli blockade for up to four carriers per dot is established, revealing a more complex transition structure than in conventional systems due to the involvement of both spin and valley pseudospin degrees of freedom. This result provides new possibilities for spin and valley qubit manipulation and control in bilayer graphene.
Kaoru Mizuta and Keisuke Fujii
Phys. Rev. Research 6, L012007 (2024) - Published 12 January, 2024
Recursive construction allows one to obtain parameter sets to execute quantum algorithms by quantum singular-value transformation in a stable way. As an example, it reveals an analytical parameter set for matrix sign functions in eigenstate filtering and quantum linear system problems.
C. J. Baker et al. (ALPHA Collaboration)
Phys. Rev. Research 6, L012008 (2024) - Published 16 January, 2024
The electric field produced by patch potentials in a Penning-Malmberg trap is measured using trapped electrons. The measurement technique is used to show that an ultraviolet laser worsens patch potentials on cryogenic surfaces.
Ibrahim Alsolami and Tomoki Fukai
Phys. Rev. Research 6, L012009 (2024) - Published 16 January, 2024
In science and engineering, errors typically decrease with less noise—observing the opposite is rather counterintuitive. A study of the performance of neural communication in a noisy environment finds a special class of errors that, in a regime, increase with less noise.
Alexander Leibenzon and Michael Assaf
Phys. Rev. Research 6, L012010 (2024) - Published 16 January, 2024
A novel phase transition in the SIR model of epidemics is demonstrated, showing the dependence of the final outbreak size on the network heterogeneity strength (coefficient of variation, COV) and basic reproduction number .
Therese Frostad, Philipp Pirro, Alexander A. Serga, Burkard Hillebrands, Arne Brataas, and Alireza Qaiumzadeh
Phys. Rev. Research 6, L012011 (2024) - Published 17 January, 2024
Magnon Bose-Einstein condensate (BEC) is electrically generated through spin Hall torques, facilitated by a finite out-of-plane magnetic anisotropy in YIG. Injected magnons in the YIG thin film occupy the lowest magnon states after the thermalization process, forming two coherent macroscopic magnon BEC states at , which their densities oscillate between the two magnon minima.
Yun-Xuan Zhang, Hao-Wei Hu, Yi-Cheng Zhao, and Lin I
Phys. Rev. Research 6, L012012 (2024) - Published 17 January, 2024
A new perspective from fluctuating screw dislocation filaments (SDFs) winded around by helical layering fronts is provided to reveal the transient dynamics of tightly confined liquids after quenching. The uncovered topological origins for the spontaneous formation, interaction, breaking, reconnection, and loop merging and shedding of SDFs can be extended to various systems with unstable layers or wave fronts.
E. Joshi, M. H. Thoma, and M. Schwabe
Phys. Rev. Research 6, L012013 (2024) - Published 18 January, 2024
The onset of turbulence is studied at the particle-resolved level using three-dimensional molecular dynamics simulations of micrometer-sized “dust” particles embedded in a plasma environment, also known as a complex plasma. Turbulence is triggered by simulating a flow of microparticles past an obstacle while controlling parameters such as the flow speed and particle charge with and without the presence of damping. It is found that turbulence in simulations with damping occurs after the formation of shock fronts and that the transition to turbulence follows the conventional pathway involving the intermittent emergence of turbulent puffs.
Jize Sui
Phys. Rev. Research 6, L012014 (2024) - Published 18 January, 2024
The nonmonotonic dynamics of the nuclear-to-cellular volume ratio as a eukaryotic cell responds to external osmotic stimuli is reported, which challenges conventional knowledge of a constant nuclear-to-cellular volume ratio. Combining simulations and analytical argument, the observed nontrivial dynamics is validly rationalized and its regulatory mechanism is highlighted as the collaboration of the excluded volume interactions between the polydisperse biomolecules and the spatial constraint from the nuclear envelope upon the macromolecule diffusions.
Guanhua Chen and Yao Yao
Phys. Rev. Research 6, L012015 (2024) - Published 18 January, 2024
A dipole-facilitated kinetically constrained model with three disconnected Hilbert subspaces is constructed, and the quantum entanglement is formed between two small subspaces, instead of two substances.
P. T. Campbell, B. K. Russell, C. Dong, G. Fiksel, P. M. Nilson, A. G. R. Thomas, C. A. Walsh, K. M. Krushelnick, and L. Willingale
Phys. Rev. Research 6, L012016 (2024) - Published 18 January, 2024
Experiments performed with the OMEGA EP laser system used proton deflectometry to measure ultrafast field dynamics driven by strongly magnetized relativistic electrons. Three-dimensional particle-in-cell simulations show collisionless shock formation and provide insight into the microphysics that can be relevant to high-energy shocks observed in extreme astrophysical environments.
Nils Heinisch, Nikolas Köcher, David Bauch, and Stefan Schumacher
Phys. Rev. Research 6, L012017 (2024) - Published 19 January, 2024
Quantum emitter re-excitation is one of the problems in high-quality photon generation when emitters are placed inside a cavity. It is demonstrated theoretically that re-excitation and the resulting reduced photon quality can be overcome using a Swing-UP (SUPER) excitation technique with two red-detuned laser pulses, leading to generation of high-quality single photons and entangled photon pairs.
M. Bailly-Grandvaux, R. Florido, C. A. Walsh, G. Pérez-Callejo, F. N. Beg, P. Bradford, M. A. Gigosos, R. C. Mancini, C. McGuffey, F. Suzuki-Vidal, C. Vlachos, and J. J. Santos
Phys. Rev. Research 6, L012018 (2024) - Published 19 January, 2024
Magnetization is a key strategy to enhance inertial confinement fusion performance. Results from argon-doped deuterium-filled cylindrical implosions experiments carried out at the OMEGA laser facility with and without an imposed magnetic field are reported. Systematic changes in argon -shell emission lines reveal a 50% core temperature increase when a 30-T seed magnetic field is applied. Experimental spectra are in line with extended-magnetohydrodynamic simulations, which provide strong evidence for the impact of a 10-kT compressed field during peak compression, thus offering key insights for the validation of magnetized transport models in dense plasmas.
Alexey V. Scherbakov, Alex D. Carr, Tetiana L. Linnik, Serhii M. Kukhtaruk, Andrew D. Armour, Achim Nadzeyka, Andrew W. Rushforth, Andrey V. Akimov, and Manfred Bayer
Phys. Rev. Research 6, L012019 (2024) - Published 23 January, 2024
A femtosecond laser pulse triggers hybrid excitation of magnons in a ferromagnetic nanostructure via an instant broadband kick and also through quasiharmonic driving by phonons. By tuning the external magnetic field and exploiting the dependence of the phase of the broadband excitation on the laser fluence, the phase and amplitude of the coherent magnon response is manipulated.
C. R. J. Fitzpatrick, J. P. Kennedy, B. Dromey, and M. Yeung
Phys. Rev. Research 6, L012020 (2024) - Published 23 January, 2024
By tailoring the incident waveform of a relativistic laser using off-harmonic multiples of the fundamental frequency, it is shown how subtle control of electron bunches and isolation of a single attosecond pulse can be achieved.
Ehsan Arabahmadi, Daniel Schumayer, Benoît Grémaud, Christian Miniatura, and David A. W. Hutchinson
Phys. Rev. Research 6, L012021 (2024) - Published 25 January, 2024
For nearly fifty years it’s been understood that dimensionality plays a key role in the effects of disorder upon the conductivity of a material. Simple arguments tell us that one-dimensional systems are always insulators, three-dimensional systems display a phase transition from metal to insulator with increasing disorder, and two-dimensional systems asymptotically approach a metallic phase with vanishing disorder. It has been predicted that spin-orbit coupling in spin-1/2 systems can induce a phase transition in two dimensions. This prediction is confirmed and the nature of the transition in these systems is further elucidated.
Sebastiano Battisti, Giorgio De Simoni, Luca Chirolli, Alessandro Braggio, and Francesco Giazotto
Phys. Rev. Research 6, L012022 (2024) - Published 25 January, 2024
Superconductive tunnel junctions under a strong thermal gradient show a sizable bipolar thermoelectric effect induced by spontaneous particle-hole symmetry breaking. A superconductive structure with a central Coulombic island that can establish a Coulomb blockade regime is proposed. The demonstration of the gate control of the structure’s bipolar thermoelectric effect and the crucial role of the Coulomb interactions in this phenomenology are given.
Shay I. Heizler, Menahem Krief, and Michael Assaf
Phys. Rev. Research 6, L012023 (2024) - Published 31 January, 2024
An exact solution is derived to the spherical-symmetric Boltzmann equation in the general-collision case using an exact scaling law relating the Green function of the pure-scattering case to the general collision case. This allows the corresponding diffusion coefficient to be identified by inspecting the transport solution at long times.
Leon Mixa, Hans Keßler, Andreas Hemmerich, and Michael Thorwart
Phys. Rev. Research 6, L012024 (2024) - Published 2 February, 2024
Exotic sub-Ohmic quantum fluctuations are shown to originate from the Beliaev dissipative quasiparticle excitations in cavity BEC systems. They are highly tunable and affect directly experimental observables, such as the Stokes shift and the non-Markovian dynamics near the critical Dicke superradiant transition.
David Wellnitz, Mikhail Mamaev, Thomas Bilitewski, and Ana Maria Rey
Phys. Rev. Research 6, L012025 (2024) - Published 7 February, 2024
The generation of spin squeezing with itinerant ultracold dipoles in optical lattices is studied. Under a variety of experimentally accessible conditions, tunneling of the dipoles in the lattice is shown to protect collective correlations and enhance spin squeezing.
Gun Oh, Jae-Hong Lim, Sung Hoon Kang, and Byung Mook Weon
Phys. Rev. Research 6, L012026 (2024) - Published 8 February, 2024
The x-ray microtomographic observations of the evaporation dynamics of confined nonspherical water droplets inside micropillars suggest the contact line length dominance resulting from the nonuniform evaporation flux at the contact line.
Yoshua Hirai, Shun Okumura, Naotaka Yoshikawa, Takashi Oka, and Ryo Shimano
Phys. Rev. Research 6, L012027 (2024) - Published 9 February, 2024
Floquet analysis of resonantly driven three-dimensional Dirac electrons shows that Weyl states emerge universally at one-photon resonances.
Sharareh Sayyad
Phys. Rev. Research 6, L012028 (2024) - Published 16 February, 2024
While in the single-particle picture, anomalous chiral currents merely appear due to the coupling of massless particles with background fields, and the anomaly relations can be further modified when many-body interactions are present. It’s shown that incorporating non-Hermiticity and many-body interactions gives rise to additional terms in anomaly relations beyond their Hermitian counterparts. These many-body corrections are nonvanishing in nonequilibrium or inhomogeneous systems. The findings advance efforts in understanding anomalous transport in interacting non-Hermitian systems.
Kota Mitsumoto and Kyohei Takae
Phys. Rev. Research 6, L012029 (2024) - Published 16 February, 2024
Elasticity stabilizes adsorption superlattice formation in a honeycomb soft porous crystal. This physical mechanism can be utilized for controlling the spatial distribution of adsorbed particles.
John S. Van Dyke, Karunya Shirali, George S. Barron, Nicholas J. Mayhall, Edwin Barnes, and Sophia E. Economou
Phys. Rev. Research 6, L012030 (2024) - Published 16 February, 2024
A systematic and easily generalizable method to perform adaptive variational quantum simulations on lattice models, termed operator tiling, is proposed, in which a small problem instance is first studied to learn the most relevant operators. State preparation circuits using operators identified from solving the small problem instance are then iteratively tiled to larger problem instances. The method is demonstrated on strongly correlated spin models in one and two dimensions and shown to yield effective ansätze.
Jingdong Zhang, Qunxi Zhu, and Wei Lin
Phys. Rev. Research 6, L012031 (2024) - Published 20 February, 2024
A machine learning framework, equipped with a unitary Koopman structure, is designed to reconstruct Hamiltonian systems using either noise-perturbed or partially observational data. This framework can discover conservation laws and scale effectively to physical models even with hundreds and thousands of degrees of freedom.
Fabian Koch, Jona Erle, and Tanja Schilling
Phys. Rev. Research 6, L012032 (2024) - Published 20 February, 2024
Forces cannot simply be added to the Langevin equation. Momentum transfer from the Brownian particle on the solvent always produces an additional nonequilibrium solvent response force that has highly nontrivial statistical properties.
Maxence Arutkin and Shlomi Reuveni
Phys. Rev. Research 6, L012033 (2024) - Published 21 February, 2024
A doubly stochastic version of the Montroll-Weiss continuous time random walk is introduced. By incorporating fluctuating jump rates, the model provides a tractable framework for understanding the dynamics of diffusion processes in heterogeneous environments, shedding light on the emergence of Brownian yet non-Gaussian diffusion phenomena observed in various systems.
Haolin Pan, Zheng Liu, Dazhi Hou, Yang Gao, and Qian Niu
Phys. Rev. Research 6, L012034 (2024) - Published 21 February, 2024
The Onsager’s reciprocal relation in spin transport is proved from the thermodynamic point of view and further confirmed by deriving the spin Hall effect and its inverse using the semiclassical theory. The intrinsic part of the spin conductivity is shown to be a tensor of rank 2 instead of rank 3, to be only of Hall type, and to not dissipate heat, resulting in a planar spin Hall effect governed by a spin-repulsion vector with clear geometric origin.
Bingcheng Qing, Long B. Nguyen, Xinyu Liu, Hengjiang Ren, William P. Livingston, Noah Goss, Ahmed Hajr, Trevor Chistolini, Zahra Pedramrazi, David I. Santiago, Jie Luo, and Irfan Siddiqi
Phys. Rev. Research 6, L012035 (2024) - Published 22 February, 2024
A broadband coplanar-waveguide-based impedance-transformed Josephson parametric amplifier is developed, featuring broad bandwidth and quantum-limited noise performance with minimal fabrication and design complexity. It can be readily designed and fabricated in research groups to accelerate the superconducting quantum information research.
Andrew T. Ton, Arthur K. MacKeith, Mark D. Shattuck, and Corey S. O'Hern
Phys. Rev. Research 6, L012036 (2024) - Published 22 February, 2024
Wound healing in epithelial tissues is investigated using discrete-element-method simulations of the deformable particle model. Differences in the cell shape distributions and healing rates among developmental stages of fruit flies are achieved by varying the mechanical plasticity of the cell membrane.
Ankit Mishra, Tao Wen, and Kang Hao Cheong
Phys. Rev. Research 6, L012037 (2024) - Published 22 February, 2024
Introducing a pragmatic routing strategy inspired by Parrondo’s paradox: Stochastic alternation between shortest-path and greedy algorithms in packet transmission demonstrates a noteworthy reduction in the total transmission weight.
Ligesh Theeyancheri, Subhasish Chaki, Tapomoy Bhattacharjee, and Rajarshi Chakrabarti
Phys. Rev. Research 6, L012038 (2024) - Published 22 February, 2024
A dense suspension of active Brownian particles undergoes motility-induced phase separation and separates into two distinct phases. However, the behavior is quite different and exhibits an emergent dynamic clustering when these active Brownian particles are connected via springs to form rings.
Shovan Dutta, Stefan Kuhr, and Nigel R. Cooper
Phys. Rev. Research 6, L012039 (2024) - Published 23 February, 2024
It is shown how one can harness certain kinds of symmetry and timed pulses for on-demand generation of long-range entanglement in many-body quantum systems. In particular, it’s show how one can create any number of nonlocal Bell pairs in a qubit array and drive a Hubbard chain toward a maximally correlated -pairing state.
Yi-Hsien Du, Sergej Moroz, Dung Xuan Nguyen, and Dam Thanh Son
Phys. Rev. Research 6, L012040 (2024) - Published 26 February, 2024
The Tkachenko wave is a special phonon of the superfluid vortex lattice with a quadratic dispersion; it is a shared Nambu-Goldstone boson of magnetic translation and boson conservation symmetries. A nonlinear theory of the Tkachenko mode based on noncommutative field theory with the dipole symmetry is formulated, and it is shown that the excitation is stable.
Luis F. Alday, Vasco Gonçalves, Maria Nocchi, and Xinan Zhou
Phys. Rev. Research 6, L012041 (2024) - Published 26 February, 2024
The flat-space limit together with factorization give rise to an efficient algorithm for computing scattering amplitudes in anti–de Sitter space.
Vincenzo Calabrese, Tatiana Porto Santos, Carlos G. Lopez, Minne Paul Lettinga, Simon J. Haward, and Amy Q. Shen
Phys. Rev. Research 6, L012042 (2024) - Published 26 February, 2024
Experiments reveal that extensional flow outperforms shear flow in orienting polymers and rod-like colloids to an extent determined by their conformation.
Christian Arends, Lasse Wolf, Jasmin Meinecke, Sonja Barkhofen, Tobias Weich, and Tim J. Bartley
Phys. Rev. Research 6, L012043 (2024) - Published 29 February, 2024
In the quest for the realization of larger and larger quantum networks, the established decomposition in 2 × 2 subunitaries, easily implemented by beam splitters and phase shifters, comes up against borders if the network becomes too big. A new mathematical decomposition algorithm to decompose large network unitaries into subunitaries of arbitrary size takes heed of technological advances to build larger physical components, realizing larger subunitary sizes in order to increase the achievable size of high-quality networks.
Eric Cereceda-López, Mattia Ostinato, Antonio Ortiz-Ambriz, Arthur V. Straube, Matteo Palassini, and Pietro Tierno
Phys. Rev. Research 6, L012044 (2024) - Published 1 March, 2024
Steerable laser tweezers are used to trap colloids along a circle of potential wells and to reduce its radius at a controlled quench speed. Via theory and simulations, it is shown that buckling emerges by considering the sole hard-sphere interactions, unveiling the mechanism of interfacial deformation in driven microscopic discrete rings.
Miriam Kappe, Paul Martini, Arne Schiller, Elisabeth Gruber, Fabio Zappa, Serge A. Krasnokutski, Paul Scheier, and Michael Gatchell
Phys. Rev. Research 6, L012045 (2024) - Published 1 March, 2024
Helium-tagged buckminsterfullerene anions are formed from doped helium nanodroplets. Their absorption spectrum is measured using messenger spectroscopy from which a corrected gas-phase spectrum of the bare ions is obtained.
A. Spuri, D. Nikolić, S. Chakraborty, M. Klang, H. Alpern, O. Millo, H. Steinberg, W. Belzig, E. Scheer, and A. Di Bernardo
Phys. Rev. Research 6, L012046 (2024) - Published 1 March, 2024
The generation of Cooper pairs of electrons with parallel-aligned spins (spin triplets) has been explored in superconductor/ferromagnet (S/F) thin films as a route to do spintronics with low energy dissipation. It’s shown that spin triplets can also be generated at the van der Waals interface forming between stacked S and F flakes. The dependence of the critical temperature of the system on the spin texture of the F layer, which is modulated by an applied field, is consistent with that expected based on spin-triplet generation theory.
W. Z. Zhang, H. S. Fu, J. B. Cao, Z. Wang, W. D. Fu, Y. Y. Liu, and Y. Yu
Phys. Rev. Research 6, L012047 (2024) - Published 1 March, 2024
The dispersion relation of whistler waves in superhot ( > 5 keV) plasmas is experimentally determined. Good agreement between experiment and kinetic theory unmasks the characteristics of whistler waves at elevated temperatures and exhibits the evolution of their group velocity dispersion from positive to negative.
David M. Lancaster, Ugne Dargyte, and Jonathan D. Weinstein
Phys. Rev. Research 6, L012048 (2024) - Published 1 March, 2024
Ensembles of rubidium atoms trapped in solid neon have previously been shown to have ultralong coherence times. The ability to detect single atoms and measure their spin state is essential for using these atoms as nanoscale quantum sensors. Here, the optical properties of single rubidium atoms in neon are reported.
Alessandro Braggio, Matteo Carrega, Björn Sothmann, and Rafael Sánchez
Phys. Rev. Research 6, L012049 (2024) - Published 4 March, 2024
Nonequilibrium effects in interacting systems are among the most challenging problems in condensed-matter physics. Here, a quantum Hall-based setup where a simple thermoelectrical DC measurement extracts information on the interaction-mediated thermal equilibration processes is presented. It’s shown how thermal relaxation between edge states, initially at different temperatures, evolves in terms of the interaction strength, the length of the interaction region, and the temperature differences, finding a universal behavior. The predictions between Landau-Fermi liquid and Tomonaga-Luttinger liquid are compared. Finally, a new circuit theory is applied, demonstrating how the cross-correlations crucially affect the energy-relaxation process and the electron-distribution evolution.
G. S. Agarwal
Phys. Rev. Research 6, L012050 (2024) - Published 6 March, 2024
This article shows how an unexcited atom affects the Purcell decay, depending on the coupling state.
Giulia Zheng, Elías Portolés, Alexandra Mestre-Torà, Marta Perego, Takashi Taniguchi, Kenji Watanabe, Peter Rickhaus, Folkert K. de Vries, Thomas Ihn, Klaus Ensslin, and Shuichi Iwakiri
Phys. Rev. Research 6, L012051 (2024) - Published 6 March, 2024
The supercurrent through a narrow channel in magic-angle twisted bilayer graphene can be turned on and off by tuning the gate-defined constriction.
Carlos L. Benavides-Riveros, Tomasz Wasak, and Alessio Recati
Phys. Rev. Research 6, L012052 (2024) - Published 7 March, 2024
Quantum Fisher information (QFI) is a powerful concept with many applications, ranging from detecting quantum phase transitions to witnessing multipartite entanglement. Its quantification for quantum many-body systems, however, remains very challenging. A functional theory for QFI is introduced, and it’s demonstrated that those functionals can universally be determined by the one-body reduced density matrix, thus avoiding the use of exponentially large wave functions.
Seik Pak, Cheol Hun Yeom, Sonu Verma, and Moon Jip Park
Phys. Rev. Research 6, L012053 (2024) - Published 8 March, 2024
In 𝒫𝒯-symmetric non-Hermitian systems, the topological metal protected by the Hopf invariant is discovered. This phase is referred to as Hopf metal.
F. Binanti, N. Goldman, and C. Repellin
Phys. Rev. Research 6, L012054 (2024) - Published 8 March, 2024
A spectroscopic tool specifically designed to probe the edge and bulk collective modes of atomic fractional Chern insulators reveals universal topological signatures.
Armand Leclerc, Lucien Jezequel, Nicolas Perez, Asmita Bhandare, Guillaume Laibe, and Pierre Delplace
Phys. Rev. Research 6, L012055 (2024) - Published 11 March, 2024
It is shown that the astrophysical linear buoyancy instability can be tackled as a non-Hermitian topology problem, exhibiting exceptional long-wavelength modes.
J. van de Kraats, D. J. M. Ahmed-Braun, V. E. Colussi, and S. J. J. M. F. Kokkelmans
Phys. Rev. Research 6, L012056 (2024) - Published 11 March, 2024
A conserving and beyond-Gaussian model is developed describing the dynamics of a Bose-Einstein condensate following a quench to unitarity, a paradigmatic example of an out-of-equilibrium strongly interacting quantum system. By integrating to previously inaccessible quench times, it is shown that the postquench dynamics are predominantly driven by the sequential development of coherent few-body correlations.
I. A. Ado, M. Titov, Rembert A. Duine, and Arne Brataas
Phys. Rev. Research 6, L012057 (2024) - Published 11 March, 2024
It is found that the conventional Kubo formula for dc conductivity misses an important contribution from the “electron-positron” matrix elements of the velocity and position operators. It is also observed that each velocity operator that enters this formula contains an anomalous part.
Elio J. König
Phys. Rev. Research 6, L012058 (2024) - Published 13 March, 2024
Recent experiments revealing magnetic memory in the superconductor 4-TaS call for a theoretical explanation of spontaneous vortex creation without spontaneous time-reversal symmetry breaking. This mean-field parton theory offers such an explanation in terms of vortices in the slave boson condensate, thereby introducing the notion of a type-II heavy Fermi liquid.
Cong Chen, Dawei Zhai, Cong Xiao, and Wang Yao
Phys. Rev. Research 6, L012059 (2024) - Published 13 March, 2024
A nonlinear dynamical Hall effect unique to layered materials with chiral symmetry, which is driven by the joint action of in-plane and time variation of out-of-plane ac fields, is proposed. It has a band geometric origin in a mixed quantum metric characteristic of interlayer coherent electron wave functions.
Sai Wang, Zhi-Chao Zhao, Jun-Peng Li, and Qing-Hua Zhu
Phys. Rev. Research 6, L012060 (2024) - Published 15 March, 2024
This article explores the possibility of using pulsar timing arrays as proxies for the detection of gravitational waves and, thus, as tools for probing signatures of the early universe.
A. Maddi, Y. Auregan, G. Penelet, V. Pagneux, and V. Achilleos
Phys. Rev. Research 6, L012061 (2024) - Published 15 March, 2024
An acoustic mapping of the Hatano-Nelson model using a transfer matrix approach is proposed. The experimental results, using a nonreciprocal network of actively controlled loudspeakers, show the emergence of the non-Hermitian skin effect and the boundary sensitivity.
Paramita Dutta, Jorge Cayao, Annica M. Black-Schaffer, and Pablo Burset
Phys. Rev. Research 6, L012062 (2024) - Published 19 March, 2024
This article studies the nonlocal properties of Majorana states, by looking at the waiting times between consecutive charge transfers across the interferometer and the information encoded in the correlations between these waiting times.
Tatsuki Odake, Hlér Kristjánsson, Akihito Soeda, and Mio Murao
Phys. Rev. Research 6, L012063 (2024) - Published 22 March, 2024
An algorithm is presented to program a desired Hamiltonian by connecting a physical system to a quantum computer.
Weihua Zhang, Gabriel M. Lando, Barbara Dietz, and Sergej Flach
Phys. Rev. Research 6, L012064 (2024) - Published 25 March, 2024
Lyapunov spectra of nonlinear unitary-circuit maps are used to unravel the crossover between two thermalization slowing-down universality classes close to integrability, triggered by the strength of incorporated disorder.
Javier Rojo-González, Livio Nicola Carenza, Alexis de la Cotte, Ludwig A. Hoffmann, Luca Giomi, and Alberto Fernandez-Nieves
Phys. Rev. Research 6, L012065 (2024) - Published 27 March, 2024
Nematic solid tori subject to tangential anchoring feature defect structures despite not being topologically required. Their metastability results from the presence of energy barriers accounting for the bulk rearrangement that would be required for the nematic to transition from defect-populated to defect-free states.
He-Guang Xu, V. Montenegro, Gao Xianlong, Jiasen Jin, and G. D. de Moraes Neto
Phys. Rev. Research 6, 013001 (2024) - Published 2 January, 2024
Claude Amra, Ali Passian, Philippe Tchamitchian, Mauro Ettorre, Ahmed Alwakil, Juan Antonio Zapien, Paul Rouquette, Yannick Abautret, and Myriam Zerrad
Phys. Rev. Research 6, 013002 (2024) - Published 2 January, 2024
Sina Zeytinoğlu and Sho Sugiura
Phys. Rev. Research 6, 013003 (2024) - Published 3 January, 2024
Ken Mochizuki and Ryusuke Hamazaki
Phys. Rev. Research 6, 013004 (2024) - Published 3 January, 2024
Hideaki Hara, Junseok Han, Yasutaka Imai, Noboru Sasao, Akihiro Yoshimi, Koji Yoshimura, Motohiko Yoshimura, and Yuki Miyamoto
Phys. Rev. Research 6, 013005 (2024) - Published 3 January, 2024
Maiko Kofu, Seiko Ohira-Kawamura, Naoki Murai, Rieko Ishii, Daigorou Hirai, Hiroshi Arima, and Kenichi Funakoshi
Phys. Rev. Research 6, 013006 (2024) - Published 3 January, 2024
Y. Huang, M. Manzoor, J. Brndiar, M. Milivojevic, and I. Štich
Phys. Rev. Research 6, 013007 (2024) - Published 3 January, 2024
L. Giannelli, E. Paladino, M. Grajcar, G. S. Paraoanu, and G. Falci
Phys. Rev. Research 6, 013008 (2024) - Published 3 January, 2024
Takachika Isomae, Akito Sakai, Mingxuan Fu, Takanori Taniguchi, Masashi Takigawa, and Satoru Nakatsuji
Phys. Rev. Research 6, 013009 (2024) - Published 3 January, 2024
Keerthi Kumaran, Manas Sajjan, Sangchul Oh, and Sabre Kais
Phys. Rev. Research 6, 013010 (2024) - Published 3 January, 2024
Amy Searle and Joseph Tindall
Phys. Rev. Research 6, 013011 (2024) - Published 3 January, 2024
Benjamin Assouline and Amir Capua
Phys. Rev. Research 6, 013012 (2024) - Published 3 January, 2024
Zhiqin Ma, Chunhua Zeng, and Wu-Ming Liu
Phys. Rev. Research 6, 013013 (2024) - Published 4 January, 2024
Zheng-Yan Liu, An-Chun Ji, and Qing Sun
Phys. Rev. Research 6, 013014 (2024) - Published 4 January, 2024
Zhikun Han, Chufan Lyu, Yuxuan Zhou, Jiahao Yuan, Ji Chu, Wuerkaixi Nuerbolati, Hao Jia, Lifu Nie, Weiwei Wei, Zusheng Yang, Libo Zhang, Ziyan Zhang, Chang-Kang Hu, Ling Hu, Jian Li, Dian Tan, Abolfazl Bayat, Song Liu, Fei Yan, and Dapeng Yu
Phys. Rev. Research 6, 013015 (2024) - Published 4 January, 2024
Elias Starchl and Lukas M. Sieberer
Phys. Rev. Research 6, 013016 (2024) - Published 5 January, 2024
Guilherme R. Fonseca, Filipa R. Prudêncio, Mário G. Silveirinha, and Paloma A. Huidobro
Phys. Rev. Research 6, 013017 (2024) - Published 5 January, 2024
A first-principles formalism that enables the topological characterization of Weyl points in three-dimensional dispersive photonic continua is introduced. The chirality of Weyl points is computed through gap Chern numbers and through direct computation of the Berry curvature, in both cases solely using the photonic Green’s function.
Ryusuke Hamazaki
Phys. Rev. Research 6, 013018 (2024) - Published 8 January, 2024
L. Ben Ltaief, K. Sishodia, R. Richter, B. Bastian, J. D. Asmussen, S. Mandal, N. Pal, C. Medina, S. R. Krishnan, K. von Haeften, and M. Mudrich
Phys. Rev. Research 6, 013019 (2024) - Published 8 January, 2024
H. Pan, Z. H. An, and C.-M. Hu
Phys. Rev. Research 6, 013020 (2024) - Published 8 January, 2024
Jan Korbel and David H. Wolpert
Phys. Rev. Research 6, 013021 (2024) - Published 8 January, 2024
Ming-Yang Li, Xiao-Yu Cao, Yuan-Mei Xie, Hua-Lei Yin, and Zeng-Bing Chen
Phys. Rev. Research 6, 013022 (2024) - Published 8 January, 2024
Yuma Fujimoto and Sosuke Ito
Phys. Rev. Research 6, 013023 (2024) - Published 8 January, 2024
Mitsuki Katsuda, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 6, 013024 (2024) - Published 8 January, 2024
X. Pan, M. Šmíd, L. G. Huang, T. Kluge, V. Bagnoud, E. Brambrink, T. E. Cowan, J. Colgan, T. Ebert, D. Hartnagel, M. Hesse, J. Hornung, A. Kleinschmidt, P. Perez-Martin, A. Neukirch, K. Philipp, S. Sander, G. Schaumann, A. Tebartz, B. Zielbauer, M. Roth, and K. Falk
Phys. Rev. Research 6, 013025 (2024) - Published 8 January, 2024
Qingyu Li, Yuhan Huang, Xiaokai Hou, Ying Li, Xiaoting Wang, and Abolfazl Bayat
Phys. Rev. Research 6, 013027 (2024) - Published 10 January, 2024
Shuyi Lin, Meiling Xu, Feilong Wang, Jian Hao, and Yinwei Li
Phys. Rev. Research 6, 013028 (2024) - Published 10 January, 2024
Ryan Levy, Di Luo, and Bryan K. Clark
Phys. Rev. Research 6, 013029 (2024) - Published 10 January, 2024
Shaolong Chen, Zhiqiang Zhou, Jiguang Li, Tingxian Zhang, Chengbin Li, Tingyun Shi, Yao Huang, Kelin Gao, and Hua Guan
Phys. Rev. Research 6, 013030 (2024) - Published 10 January, 2024
Haoye Qin, Zhe Zhang, Qiaolu Chen, and Romain Fleury
Phys. Rev. Research 6, 013031 (2024) - Published 10 January, 2024
Uliana E. Khodaeva, Dmitry L. Kovrizhin, and Johannes Knolle
Phys. Rev. Research 6, 013032 (2024) - Published 10 January, 2024
Orazio Scarlatella, Aashish A. Clerk, and Marco Schirò
Phys. Rev. Research 6, 013033 (2024) - Published 10 January, 2024
Jiaxuan Wang, Ruynet L. de Matos Filho, Girish S. Agarwal, and Luiz Davidovich
Phys. Rev. Research 6, 013034 (2024) - Published 10 January, 2024
Shaohua Guan, Zhichao Zhang, Zihan Zhang, and Hualin Shi
Phys. Rev. Research 6, 013035 (2024) - Published 10 January, 2024
Weijie Huang and Yao Yao
Phys. Rev. Research 6, 013037 (2024) - Published 11 January, 2024
Duc Tuan Hoang, Friederike Metz, Andreas Thomasen, Tran Duong Anh-Tai, Thomas Busch, and Thomás Fogarty
Phys. Rev. Research 6, 013038 (2024) - Published 11 January, 2024
S. M. Farzaneh, Mehdi Hatefipour, William F. Schiela, Neda Lotfizadeh, Peng Yu, Bassel Heiba Elfeky, William M. Strickland, Alex Matos-Abiague, and Javad Shabani
Phys. Rev. Research 6, 013039 (2024) - Published 11 January, 2024
Yuki Takaha, Hideyuki Mizuno, and Atsushi Ikeda
Phys. Rev. Research 6, 013040 (2024) - Published 11 January, 2024
T. T. Simpson, J. J. Pigeon, M. V. Ambat, K. G. Miller, D. Ramsey, K. Weichman, D. H. Froula, and J. P. Palastro
Phys. Rev. Research 6, 013041 (2024) - Published 11 January, 2024
Dusan Lorenc and Zhanybek Alpichshev
Phys. Rev. Research 6, 013042 (2024) - Published 11 January, 2024
So Takei and Yaroslav Tserkovnyak
Phys. Rev. Research 6, 013043 (2024) - Published 11 January, 2024
Henning Schomerus
Phys. Rev. Research 6, 013044 (2024) - Published 11 January, 2024
Giuseppe Baio, Matthew T. Wheeler, David S. Hall, Janne Ruostekoski, and Magnus O. Borgh
Phys. Rev. Research 6, 013046 (2024) - Published 12 January, 2024
Hao-Yue Qi and Wei Zheng
Phys. Rev. Research 6, 013047 (2024) - Published 12 January, 2024
Arpit Raj, Swati Chaudhary, and Gregory A. Fiete
Phys. Rev. Research 6, 013048 (2024) - Published 12 January, 2024
Xingyu Pan, Jie Zhou, Yinzuo Zhou, Stefano Boccaletti, and Ivan Bonamassa
Phys. Rev. Research 6, 013049 (2024) - Published 12 January, 2024
Tobias Kehrer, Tobias Nadolny, and Christoph Bruder
Phys. Rev. Research 6, 013050 (2024) - Published 12 January, 2024
Saud Čindrak, Brecht Donvil, Kathy Lüdge, and Lina Jaurigue
Phys. Rev. Research 6, 013051 (2024) - Published 16 January, 2024
Daniel Brady, Jana Bender, Patrick Mischke, Simon Ohler, Thomas Niederprüm, Herwig Ott, and Michael Fleischhauer
Phys. Rev. Research 6, 013052 (2024) - Published 16 January, 2024
Adrià Canós Valero, Vjaceslavs Bobrovs, Thomas Weiss, Lei Gao, Alexander S. Shalin, and Yuri Kivshar
Phys. Rev. Research 6, 013053 (2024) - Published 16 January, 2024
Xiang Qu, Yi Hu, Wenjie Cai, Yang Xu, Hu Ke, Guolong Zhu, and Zihan Huang
Phys. Rev. Research 6, 013054 (2024) - Published 16 January, 2024
Prajit Dhara and Saikat Guha
Phys. Rev. Research 6, 013055 (2024) - Published 16 January, 2024
A. Seidel, B. Lei, C. Zepter, M. C. Kaluza, A. Sävert, M. Zepf, and D. Seipt
Phys. Rev. Research 6, 013056 (2024) - Published 16 January, 2024
Logan W. Cooke, Arina Tashchilina, Mason Protter, Joseph Lindon, Tian Ooi, Frank Marsiglio, Joseph Maciejko, and Lindsay J. LeBlanc
Phys. Rev. Research 6, 013057 (2024) - Published 16 January, 2024
Chang-geun Oh and Haruki Watanabe
Phys. Rev. Research 6, 013058 (2024) - Published 16 January, 2024
Hajime Koike, Hideki Takayasu, and Misako Takayasu
Phys. Rev. Research 6, 013059 (2024) - Published 16 January, 2024
Carlos L. Benavides-Riveros
Phys. Rev. Research 6, 013060 (2024) - Published 16 January, 2024
Holger Götz, Thorsten Pöschel, and Olfa D'Angelo
Phys. Rev. Research 6, 013061 (2024) - Published 16 January, 2024
Zhixue He, Chen Shen, Lei Shi, and Jun Tanimoto
Phys. Rev. Research 6, 013062 (2024) - Published 16 January, 2024
Kishore Thapliyal, Jan Peřina, Jr., Ondřej Haderka, Václav Michálek, and Radek Machulka
Phys. Rev. Research 6, 013065 (2024) - Published 17 January, 2024
R. Kiessling, M. Wolf, and A. Paarmann
Phys. Rev. Research 6, 013066 (2024) - Published 17 January, 2024
Michael M. Danziger, Omkar R. Gojala, and Sean P. Cornelius
Phys. Rev. Research 6, 013067 (2024) - Published 17 January, 2024
Christian Berger, Florian Bayer, Laurens W. Molenkamp, and Tobias Kiessling
Phys. Rev. Research 6, 013068 (2024) - Published 18 January, 2024
Kevin Lively, Shunsuke A. Sato, Guillermo Albareda, Angel Rubio, and Aaron Kelly
Phys. Rev. Research 6, 013069 (2024) - Published 19 January, 2024
L. Freter, M. S. Mirmoosa, A. Sihvola, C. R. Simovski, and S. A. Tretyakov
Phys. Rev. Research 6, 013070 (2024) - Published 19 January, 2024
Sebastian Leontica and David Amaro
Phys. Rev. Research 6, 013071 (2024) - Published 19 January, 2024
Georgios G. Pyrialakos, Fan O. Wu, Pawel S. Jung, Huizhong Ren, Konstantinos G. Makris, Ziad H. Musslimani, Mercedeh Khajavikhan, Tsampikos Kottos, and Demetrios Christodoulides
Phys. Rev. Research 6, 013072 (2024) - Published 19 January, 2024
Matteo Piccolini, Vittorio Giovannetti, and Rosario Lo Franco
Phys. Rev. Research 6, 013073 (2024) - Published 19 January, 2024
Hiroyoshi Nakano and Kyosuke Adachi
Phys. Rev. Research 6, 013074 (2024) - Published 19 January, 2024
Fengyu Sun, Wenpeng Wang, Hao Dong, Jianzhi He, Zhiyong Shi, Zhengxing Lv, Qiwen Zhan, Yuxin Leng, Songlin Zhuang, and Ruxin Li
Phys. Rev. Research 6, 013075 (2024) - Published 22 January, 2024
Lukas Broers and Ludwig Mathey
Phys. Rev. Research 6, 013076 (2024) - Published 22 January, 2024
David C. Stuhrmann and Francesco Coghi
Phys. Rev. Research 6, 013077 (2024) - Published 22 January, 2024
G. J. Bean, N. D. Drummond, and J. Ruostekoski
Phys. Rev. Research 6, 013078 (2024) - Published 22 January, 2024
Esmaeel Moghimi, Iurii Chubak, Maria Kaliva, Parvin Kiany, Taihyun Chang, Junyoung Ahn, Nikolaos Patelis, Georgios Sakellariou, Sergei A. Egorov, Dimitris Vlassopoulos, and Christos N. Likos
Phys. Rev. Research 6, 013079 (2024) - Published 22 January, 2024
When nonadsorbing ring polymers are added in a fluid suspension of big, spherical colloids, solid gels are formed. Joint experimental, computational, and theoretical work shows that these gels are much stronger than those formed by the addition of linear polymer chains.
Samuel Poincloux, Pedro M. Reis, and Tom W. J. de Geus
Phys. Rev. Research 6, 013080 (2024) - Published 22 January, 2024
Luis A. Martinez, Gang Qiu, Peng Deng, Peng Zhang, Keith G. Ray, Lixuan Tai, Ming-Tso Wei, Haoran He, Kang L. Wang, Jonathan L. DuBois, and Dong-Xia Qu
Phys. Rev. Research 6, 013081 (2024) - Published 23 January, 2024
Artemy Kolchinsky, Naruo Ohga, and Sosuke Ito
Phys. Rev. Research 6, 013082 (2024) - Published 23 January, 2024
Alessandro Altoè and Christopher A. Shera
Phys. Rev. Research 6, 013084 (2024) - Published 23 January, 2024
Tathagata Karmakar, Étienne Jussiau, Sreenath K. Manikandan, and Andrew N. Jordan
Phys. Rev. Research 6, 013085 (2024) - Published 23 January, 2024
H. T. Sullivan and J. H. Cole
Phys. Rev. Research 6, 013086 (2024) - Published 23 January, 2024
Yong Yang
Phys. Rev. Research 6, 013087 (2024) - Published 23 January, 2024
W. R. B. Luckin, Y. Li, J. Jiang, S. M. Gunasekera, C. Wen, Y. Zhang, D. Prabhakaran, F. Flicker, Y. Chen, and M. Mucha-Kruczyński
Phys. Rev. Research 6, 013088 (2024) - Published 24 January, 2024
Tushar Mondal and Gianluca Gregori
Phys. Rev. Research 6, 013089 (2024) - Published 24 January, 2024
Tomohiro Tanogami and Ryo Araki
Phys. Rev. Research 6, 013090 (2024) - Published 24 January, 2024
Sergiy Stryzhenko, Alexander Bruns, and Thorsten Peters
Phys. Rev. Research 6, 013091 (2024) - Published 24 January, 2024
Yugo Takada, Yusaku Takeuchi, and Keisuke Fujii
Phys. Rev. Research 6, 013092 (2024) - Published 24 January, 2024
Cillian Cockrell, Jacob D. O'Sullivan, J. Christopher D. Terry, Emmanuel C. Nwankwo, Kostya Trachenko, and Axel G. Rossberg
Phys. Rev. Research 6, 013093 (2024) - Published 25 January, 2024
Iliya Esin, Clemens Kuhlenkamp, Gil Refael, Erez Berg, Mark S. Rudner, and Netanel H. Lindner
Phys. Rev. Research 6, 013094 (2024) - Published 25 January, 2024
Mahmoud Zeer, Dongwook Go, Peter Schmitz, Tom G. Saunderson, Hao Wang, Jamal Ghabboun, Stefan Blügel, Wulf Wulfhekel, and Yuriy Mokrousov
Phys. Rev. Research 6, 013095 (2024) - Published 25 January, 2024
Wataru Inoue, Koki Aoyama, Yusuke Teranishi, Keita Kanno, Yuya O. Nakagawa, and Kosuke Mitarai
Phys. Rev. Research 6, 013096 (2024) - Published 25 January, 2024
Daniel Schick, Markus Weißenhofer, Levente Rózsa, Jan Rothörl, Peter Virnau, and Ulrich Nowak
Phys. Rev. Research 6, 013097 (2024) - Published 25 January, 2024
Thomas Iadecola, Srimoyee Sen, and Lars Sivertsen
Phys. Rev. Research 6, 013098 (2024) - Published 26 January, 2024
Pengcheng Hou, Xiansheng Cai, Tao Wang, Youjin Deng, Nikolay V. Prokof'ev, Boris V. Svistunov, and Kun Chen
Phys. Rev. Research 6, 013099 (2024) - Published 26 January, 2024
Stéphanie Deboeuf, Suzie Protière, and Eytan Katzav
Phys. Rev. Research 6, 013100 (2024) - Published 26 January, 2024
Pragati Gupta, Arjen Vaartjes, Xi Yu, Andrea Morello, and Barry C. Sanders
Phys. Rev. Research 6, 013101 (2024) - Published 26 January, 2024
Fabian R. Lux, Sumit Ghosh, Pascal Prass, Emil Prodan, and Yuriy Mokrousov
Phys. Rev. Research 6, 013102 (2024) - Published 26 January, 2024
Yu He, Christian Ott, Thomas Pfeifer, and Mette B. Gaarde
Phys. Rev. Research 6, 013103 (2024) - Published 26 January, 2024
Nalinikanta Pradhan, Pardeep Kumar, Rina Kanamoto, Tarak Nath Dey, M. Bhattacharya, and Pankaj Kumar Mishra
Phys. Rev. Research 6, 013104 (2024) - Published 26 January, 2024
Cristian Voinea, Songyang Pu, Ammar Kirmani, Pouyan Ghaemi, Armin Rahmani, and Zlatko Papić
Phys. Rev. Research 6, 013105 (2024) - Published 26 January, 2024
Alessandro Summer, Cecilia Chiaracane, Mark T. Mitchison, and John Goold
Phys. Rev. Research 6, 013106 (2024) - Published 26 January, 2024
Henrike Probst, Christina Möller, Maren Schumacher, Thomas Brede, John Kay Dewhurst, Marcel Reutzel, Daniel Steil, Sangeeta Sharma, G. S. Matthijs Jansen, and Stefan Mathias
Phys. Rev. Research 6, 013107 (2024) - Published 26 January, 2024
Md Abul Kalam Azad Siddiki, Jibak Mukherjee, Kamal Kumar, Károly Tőkési, Deepankar Misra, and Hicham Agueny
Phys. Rev. Research 6, 013108 (2024) - Published 26 January, 2024
Jia-Xin Zhang, Chuan Chen, Jian-Hao Zhang, and Zheng-Yu Weng
Phys. Rev. Research 6, 013109 (2024) - Published 29 January, 2024
Soumyadeep Paul, Yusuke Ito, Wei-Lun Hsu, and Hirofumi Daiguji
Phys. Rev. Research 6, 013110 (2024) - Published 29 January, 2024
Siavash Golkar, Jules Berman, David Lipshutz, Robert Mihai Haret, Tim Gollisch, and Dmitri B. Chklovskii
Phys. Rev. Research 6, 013111 (2024) - Published 29 January, 2024
Detecting exponential growth in a time series is essential for accurate prediction and control. Hypothesizing that neurons detect such growth in their inputs predicts adaptation of the temporal kernel with the SNR of the input observed experimentally.
Giacomo Morpurgo, Louk Rademaker, Christophe Berthod, and Thierry Giamarchi
Phys. Rev. Research 6, 013112 (2024) - Published 29 January, 2024
Yuta Mizuno and Tamiki Komatsuzaki
Phys. Rev. Research 6, 013115 (2024) - Published 29 January, 2024
Georg Engelhardt, Sayan Choudhury, and W. Vincent Liu
Phys. Rev. Research 6, 013116 (2024) - Published 29 January, 2024
Yoshiki Hiruta and Kenta Ishimoto
Phys. Rev. Research 6, 013117 (2024) - Published 29 January, 2024
Rajendra Singh Negi, Roland G. Winkler, and Gerhard Gompper
Phys. Rev. Research 6, 013118 (2024) - Published 29 January, 2024
S. Jaiswal, Connor Belt, Anton Kananovich, and E. M. Aguirre
Phys. Rev. Research 6, 013119 (2024) - Published 30 January, 2024
Raigo Nagashima, Sida Tian, Rafael Haenel, Naoto Tsuji, and Dirk Manske
Phys. Rev. Research 6, 013120 (2024) - Published 30 January, 2024
Chi Ho Wong and Rolf Lortz
Phys. Rev. Research 6, 013121 (2024) - Published 30 January, 2024
Maurus Hans, Elinor Kath, Marius Sparn, Nikolas Liebster, Helmut Strobel, Markus K. Oberthaler, Felix Draxler, and Christoph Schnörr
Phys. Rev. Research 6, 013122 (2024) - Published 31 January, 2024
Fuxiang He, Daqiang Chen, Xinguo Ren, Sheng Meng, and Lixin He
Phys. Rev. Research 6, 013123 (2024) - Published 30 January, 2024
Sunil Ghimire, Kamal R. Joshi, Marcin Kończykowski, Romain Grasset, Amlan Datta, Makariy A. Tanatar, Damien Bérubé, Su-Yang Xu, Yuqiang Fang, Fuqiang Huang, Peter P. Orth, Mathias S. Scheurer, and Ruslan Prozorov
Phys. Rev. Research 6, 013124 (2024) - Published 31 January, 2024
Yuna Nakajima, Yuichi Akahama, and Yo Machida
Phys. Rev. Research 6, 013125 (2024) - Published 31 January, 2024
Zhaohui Wu, Xiaoming Zeng, Zhaoli Li, Zhimeng Zhang, Xiaodong Wang, Xiao Wang, Jie Mu, Yanlei Zuo, Jingqin Su, Hao Peng, Huabao Cao, Yuxi Fu, C. Riconda, and S. Weber
Phys. Rev. Research 6, 013126 (2024) - Published 31 January, 2024
Shan Huang, Hua-Lei Yin, Zeng-Bing Chen, and Shengjun Wu
Phys. Rev. Research 6, 013127 (2024) - Published 31 January, 2024
S. M. Udrescu, D. A. Torres, and R. F. Garcia Ruiz
Phys. Rev. Research 6, 013128 (2024) - Published 31 January, 2024
J. M. H. Gosling, A. Pontin, J. H. Iacoponi, P. F. Barker, and T. S. Monteiro
Phys. Rev. Research 6, 013129 (2024) - Published 31 January, 2024
Dongni Chen, Zhenyang Peng, Jiahui Li, Stefano Chesi, and Yingdan Wang
Phys. Rev. Research 6, 013130 (2024) - Published 31 January, 2024
Lei Su, Aashish Clerk, and Ivar Martin
Phys. Rev. Research 6, 013131 (2024) - Published 31 January, 2024
T. Wakamura, M. Hashisaka, S. Hoshino, M. Bard, S. Okazaki, T. Sasagawa, T. Taniguchi, K. Watanabe, K. Muraki, and N. Kumada
Phys. Rev. Research 6, 013132 (2024) - Published 1 February, 2024
Yanqi Xiong and Xiaoquan Yu
Phys. Rev. Research 6, 013133 (2024) - Published 1 February, 2024
Zhuohao Liu, Emma C. Johnson, and David L. Feder
Phys. Rev. Research 6, 013134 (2024) - Published 1 February, 2024
Peter L. Walters and Fei Wang
Phys. Rev. Research 6, 013135 (2024) - Published 1 February, 2024
Suman Kulkarni, Sophia U. David, Christopher W. Lynn, and Dani S. Bassett
Phys. Rev. Research 6, 013136 (2024) - Published 2 February, 2024
A study combines methods from network science, information theory, and cognitive science to examine the information present in note transitions within music composed by J. S. Bach. It identifies and explains differences in information content across various compositional forms based on their network structure.
Jan Behrends, Florian Venn, and Benjamin Béri
Phys. Rev. Research 6, 013137 (2024) - Published 2 February, 2024
Axel Gagge, Th. K. Mavrogordatos, and Jonas Larson
Phys. Rev. Research 6, 013138 (2024) - Published 2 February, 2024
A. Herbst, T. Estrampes, H. Albers, V. Vollenkemper, K. Stolzenberg, S. Bode, E. Charron, E. M. Rasel, N. Gaaloul, and D. Schlippert
Phys. Rev. Research 6, 013139 (2024) - Published 2 February, 2024
Davide Grassano, Luca Binci, and Nicola Marzari
Phys. Rev. Research 6, 013140 (2024) - Published 2 February, 2024
Sofia Agafonova, Umang Mishra, Fritz Diorico, and Onur Hosten
Phys. Rev. Research 6, 013141 (2024) - Published 5 February, 2024
Hugo Perrin, Thibault Scoquart, Alexander Shnirman, Jörg Schmalian, and Kyrylo Snizhko
Phys. Rev. Research 6, 013142 (2024) - Published 5 February, 2024
Julien Gacon, Jannes Nys, Riccardo Rossi, Stefan Woerner, and Giuseppe Carleo
Phys. Rev. Research 6, 013143 (2024) - Published 5 February, 2024
Hiroki Yamauchi et al.
Phys. Rev. Research 6, 013144 (2024) - Published 5 February, 2024
Bijit Mukherjee and Jeremy M. Hutson
Phys. Rev. Research 6, 013145 (2024) - Published 6 February, 2024
Silvia Bonfanti, Roberto Guerra, Rene Alvarez-Donado, Paweł Sobkowicz, Stefano Zapperi, and Mikko Alava
Phys. Rev. Research 6, 013146 (2024) - Published 6 February, 2024
Ruoqian Xu, Jialiang Tang, Pranav Chandarana, Koushik Paul, Xusheng Xu, Manhong Yung, and Xi Chen
Phys. Rev. Research 6, 013147 (2024) - Published 7 February, 2024
Jan Wingenbach, Stefan Schumacher, and Xuekai Ma
Phys. Rev. Research 6, 013148 (2024) - Published 7 February, 2024
Rayan Succar, Alain Boldini, and Maurizio Porfiri
Phys. Rev. Research 6, 013149 (2024) - Published 8 February, 2024
Benedikt Tissot and Guido Burkard
Phys. Rev. Research 6, 013150 (2024) - Published 8 February, 2024
Jorge Olmos-Trigo, Jon Lasa-Alonso, Iker Gómez-Viloria, Gabriel Molina-Terriza, and Aitzol García-Etxarri
Phys. Rev. Research 6, 013151 (2024) - Published 8 February, 2024
S. Blair, G. Zicari, A. Belenchia, A. Ferraro, and M. Paternostro
Phys. Rev. Research 6, 013152 (2024) - Published 9 February, 2024
Irina Heinz, Adam R. Mills, Jason R. Petta, and Guido Burkard
Phys. Rev. Research 6, 013153 (2024) - Published 9 February, 2024
Sam J. Griffiths and Dan E. Browne
Phys. Rev. Research 6, 013154 (2024) - Published 9 February, 2024
Natsuki Mitsuishi, Yusuke Sugita, Tomoki Akiba, Yuki Takahashi, Masato Sakano, Koji Horiba, Hiroshi Kumigashira, Hidefumi Takahashi, Shintaro Ishiwata, Yukitoshi Motome, and Kyoko Ishizaka
Phys. Rev. Research 6, 013155 (2024) - Published 9 February, 2024
Deborah Schwarcz and Stanislav Burov
Phys. Rev. Research 6, 013156 (2024) - Published 12 February, 2024
Stefano Pirandola
Phys. Rev. Research 6, 013157 (2024) - Published 13 February, 2024
Shuwei Jin, Kunlun Dai, Joris Verstraten, Maxime Dixmerias, Ragheed Alhyder, Christophe Salomon, Bruno Peaudecerf, Tim de Jongh, and Tarik Yefsah
Phys. Rev. Research 6, 013158 (2024) - Published 13 February, 2024
C.-C. Wu, K.-T. Lin, I. G. N. Y. Handayana, C.-H. Chien, S. Goswami, G.-D. Lin, Y.-C. Chen, and H. H. Jen
Phys. Rev. Research 6, 013159 (2024) - Published 12 February, 2024
Kai Zeng, Yulie Wu, Xuezhong Wu, and Dingbang Xiao
Phys. Rev. Research 6, 013160 (2024) - Published 12 February, 2024
I. A. Luchnikov, M. A. Gavreev, and A. K. Fedorov
Phys. Rev. Research 6, 013161 (2024) - Published 13 February, 2024
Anders Irbäck, Lucas Knuthson, Sandipan Mohanty, and Carsten Peterson
Phys. Rev. Research 6, 013162 (2024) - Published 13 February, 2024
Atreyie Ghosh, Sena Yang, Yanan Dai, W. Vincent Liu, and Hrvoje Petek
Phys. Rev. Research 6, 013163 (2024) - Published 13 February, 2024
Plasmonic vortices are found to host pseudoscalar 𝙀∙𝘽 fields that are odd under parity 𝒫 and time 𝒯 inversion, but even under the joint 𝒫𝒯 symmetry, enabling them to drive the magnetoelectric response and act as a source of the axion field.
Jen-Yu Lo, Yuan-Heng Tseng, and Hsuan-Yi Chen
Phys. Rev. Research 6, 013164 (2024) - Published 13 February, 2024
D. C. W. Foo, Z. Zhan, Mohammed M. Al Ezzi, L. Peng, S. Adam, and F. Guinea
Phys. Rev. Research 6, 013165 (2024) - Published 13 February, 2024
S. V. Gurevich, F. Maucher, and J. Javaloyes
Phys. Rev. Research 6, 013166 (2024) - Published 14 February, 2024
Julia Cen, Yogesh N. Joglekar, and Avadh Saxena
Phys. Rev. Research 6, 013167 (2024) - Published 14 February, 2024
Yujun Choi and Robert Joynt
Phys. Rev. Research 6, 013168 (2024) - Published 14 February, 2024
Tsutomu Momoi
Phys. Rev. Research 6, 013169 (2024) - Published 14 February, 2024
Antonio F. Peralta, Pedro Ramaciotti, János Kertész, and Gerardo Iñiguez
Phys. Rev. Research 6, 013170 (2024) - Published 16 February, 2024
Ziqian Li, Tanay Roy, David Rodríguez Pérez, David I. Schuster, and Eliot Kapit
Phys. Rev. Research 6, 013171 (2024) - Published 15 February, 2024
Shotaro Takasu and Toshio Aoyagi
Phys. Rev. Research 6, 013172 (2024) - Published 16 February, 2024
H. Rivera-Rodríguez and R. Jáuregui
Phys. Rev. Research 6, 013173 (2024) - Published 16 February, 2024
Saumya Choudhary, A. Nicholas Black, Aku Antikainen, and Robert W. Boyd
Phys. Rev. Research 6, 013174 (2024) - Published 16 February, 2024
S. Direkci, K. Winkler, C. Gut, K. Hammerer, M. Aspelmeyer, and Y. Chen
Phys. Rev. Research 6, 013175 (2024) - Published 16 February, 2024
Ru Geng, Jian Zu, Yixian Gao, and Hong-Kun Zhang
Phys. Rev. Research 6, 013176 (2024) - Published 16 February, 2024
Sascha Heußen, Don Winter, Manuel Rispler, and Markus Müller
Phys. Rev. Research 6, 013177 (2024) - Published 20 February, 2024
Zeinab Sadjadi and Heiko Rieger
Phys. Rev. Research 6, 013178 (2024) - Published 20 February, 2024
Jonathan N. Blakely, Shawn D. Pethel, and Kurt Jacobs
Phys. Rev. Research 6, 013179 (2024) - Published 20 February, 2024
A. Rodin
Phys. Rev. Research 6, 013180 (2024) - Published 20 February, 2024
Yao Du, Qing Li, Huawei Fan, Meng Zhan, Jinghua Xiao, and Xingang Wang
Phys. Rev. Research 6, 013181 (2024) - Published 20 February, 2024
Mengge Du, Yuntian Chen, and Dongxiao Zhang
Phys. Rev. Research 6, 013182 (2024) - Published 20 February, 2024
Jaeryeong Chang, Sungjun Lee, Yoonsoo Kim, Younghoon Lim, and Jee Woo Park
Phys. Rev. Research 6, 013183 (2024) - Published 20 February, 2024
Xiaohanwen Lin, Fan Wu, Sara A. López-Paz, Fabian O. von Rohr, Marco Gibertini, Ignacio Gutiérrez-Lezama, and Alberto F. Morpurgo
Phys. Rev. Research 6, 013185 (2024) - Published 20 February, 2024
Michael E. N. Tschaffon and Johannes Seiler
Phys. Rev. Research 6, 013186 (2024) - Published 20 February, 2024
Bibek Pokharel, Siddarth Srinivasan, Gregory Quiroz, and Byron Boots
Phys. Rev. Research 6, 013187 (2024) - Published 21 February, 2024
Marko Kuzmanović, Isak Björkman, John J. McCord, Shruti Dogra, and Gheorghe Sorin Paraoanu
Phys. Rev. Research 6, 013188 (2024) - Published 21 February, 2024
Manish Verma and Rossitza Pentcheva
Phys. Rev. Research 6, 013189 (2024) - Published 21 February, 2024
D. M. Busiello, M. Ciarchi, and I. Di Terlizzi
Phys. Rev. Research 6, 013190 (2024) - Published 22 February, 2024
Raymond Wiedmann, Lea Lenke, Matthias Mühlhauser, and Kai Phillip Schmidt
Phys. Rev. Research 6, 013191 (2024) - Published 22 February, 2024
Taro Kanao and Hayato Goto
Phys. Rev. Research 6, 013192 (2024) - Published 22 February, 2024
Francesco Buccheri, Reinhold Egger, and Alessandro De Martino
Phys. Rev. Research 6, 013193 (2024) - Published 22 February, 2024
Géza Ódor, István Papp, Kristóf Benedek, and Bálint Hartmann
Phys. Rev. Research 6, 013194 (2024) - Published 22 February, 2024
Noel A. Clark, Xi Chen, Joseph E. MacLennan, and Matthew A. Glaser
Phys. Rev. Research 6, 013195 (2024) - Published 23 February, 2024
Zheng-Meng Zhai, Mohammadamin Moradi, Bryan Glaz, Mulugeta Haile, and Ying-Cheng Lai
Phys. Rev. Research 6, 013196 (2024) - Published 23 February, 2024
Suruj Kalita and Rajaraman Ganesh
Phys. Rev. Research 6, 013197 (2024) - Published 23 February, 2024
F. A. Palm, J. Kwan, B. Bakkali-Hassani, M. Greiner, U. Schollwöck, N. Goldman, and F. Grusdt
Phys. Rev. Research 6, 013198 (2024) - Published 23 February, 2024
Martine Schut, Andrew Geraci, Sougato Bose, and Anupam Mazumdar
Phys. Rev. Research 6, 013199 (2024) - Published 23 February, 2024
Koichi Miyamoto, Soichiro Yamazaki, Fumio Uchida, Kotaro Fujisawa, and Naoki Yoshida
Phys. Rev. Research 6, 013200 (2024) - Published 26 February, 2024
Long Xu, Ilia Tutunnikov, Yehiam Prior, and Ilya Sh. Averbukh
Phys. Rev. Research 6, 013201 (2024) - Published 26 February, 2024
Pavel P. Popov, Michael Meth, Maciej Lewestein, Philipp Hauke, Martin Ringbauer, Erez Zohar, and Valentin Kasper
Phys. Rev. Research 6, 013202 (2024) - Published 26 February, 2024
Chu Li, Meng Li, Ruiqi Wang, Yang Chen, Xifeng Ren, Linyu Yan, Qiang Li, Qihuang Gong, and Yan Li
Phys. Rev. Research 6, 013203 (2024) - Published 26 February, 2024
Pak-Tik Fong, Sheung Chi Poon, and Hoi-Kwan Lau
Phys. Rev. Research 6, 013204 (2024) - Published 26 February, 2024
Chenfeng Cao, Hiroshi Yano, and Yuya O. Nakagawa
Phys. Rev. Research 6, 013205 (2024) - Published 26 February, 2024
Jaeyun Moon, Simon Thébaud, Lucas Lindsay, and Takeshi Egami
Phys. Rev. Research 6, 013206 (2024) - Published 26 February, 2024
Sai Wang, Zhi-Chao Zhao, and Qing-Hua Zhu
Phys. Rev. Research 6, 013207 (2024) - Published 26 February, 2024
Oliver Busch, Franziska Ziolkowski, Börge Göbel, Ingrid Mertig, and Jürgen Henk
Phys. Rev. Research 6, 013208 (2024) - Published 26 February, 2024
T. A. Flynn, N. A. Keepfer, N. G. Parker, and T. P. Billam
Phys. Rev. Research 6, 013209 (2024) - Published 26 February, 2024
Bin Wei, Jia-Ji Zhu, Yun Song, and Kai Chang
Phys. Rev. Research 6, 013210 (2024) - Published 27 February, 2024
Yinfei Li, Sanjib Ghosh, Jiangwei Shang, Qihua Xiong, and Xiangdong Zhang
Phys. Rev. Research 6, 013211 (2024) - Published 27 February, 2024
Aqil Sajjad, Michael R. Grace, and Saikat Guha
Phys. Rev. Research 6, 013212 (2024) - Published 27 February, 2024
Xin-Ran Ma, Kui Cao, Xiao-Ran Wang, Zheng Wei, Qian Du, and Su-Peng Kou
Phys. Rev. Research 6, 013213 (2024) - Published 28 February, 2024
Robin Guehne and Vojtěch Chlan
Phys. Rev. Research 6, 013214 (2024) - Published 28 February, 2024
Sun-Yong Hwang, Björn Sothmann, and Rosa López
Phys. Rev. Research 6, 013215 (2024) - Published 28 February, 2024
Tingyu Qu, Michele Masseroni, Takashi Taniguchi, Kenji Watanabe, Barbaros Özyilmaz, Thomas Ihn, and Klaus Ensslin
Phys. Rev. Research 6, 013216 (2024) - Published 28 February, 2024
Ido Zuk, Daniel Cohen, Alexey V. Gorshkov, and Alex Retzker
Phys. Rev. Research 6, 013217 (2024) - Published 28 February, 2024
Deepak Khurana, Rasmus H. Jensen, Rakshyakar Giri, Juanita Bocquel, Ulrik L. Andersen, Kirstine Berg-Sørensen, and Alexander Huck
Phys. Rev. Research 6, 013218 (2024) - Published 28 February, 2024
Fang Xie, Lei Chen, and Qimiao Si
Phys. Rev. Research 6, 013219 (2024) - Published 28 February, 2024
Tim Bode, Michael Kajan, Francisco Meirinhos, and Johann Kroha
Phys. Rev. Research 6, 013220 (2024) - Published 29 February, 2024
Kentaro Yamamoto, Samuel Duffield, Yuta Kikuchi, and David Muñoz Ramo
Phys. Rev. Research 6, 013221 (2024) - Published 29 February, 2024
Juan B. Pérez-Sánchez, Federico Mellini, Noel C. Giebink, and Joel Yuen-Zhou
Phys. Rev. Research 6, 013222 (2024) - Published 29 February, 2024
Stefan H. Sack and Daniel J. Egger
Phys. Rev. Research 6, 013223 (2024) - Published 1 March, 2024
Matthew Pocrnic, Matthew Hagan, Juan Carrasquilla, Dvira Segal, and Nathan Wiebe
Phys. Rev. Research 6, 013224 (2024) - Published 1 March, 2024
Gaole Yang et al. (The CSNS Back-n Collaboration)
Phys. Rev. Research 6, 013225 (2024) - Published 1 March, 2024
Hugo L. França, Maziyar Jalaal, and Cassio M. Oishi
Phys. Rev. Research 6, 013226 (2024) - Published 1 March, 2024
Greg Huber, Craig Knecht, Walter Trump, and Robert M. Ziff
Phys. Rev. Research 6, 013227 (2024) - Published 4 March, 2024
Shunsuke C. Furuya and Masahiro Sato
Phys. Rev. Research 6, 013228 (2024) - Published 4 March, 2024
Anjie Jiang, Yan Zhou, Xichao Zhang, and Masahito Mochizuki
Phys. Rev. Research 6, 013229 (2024) - Published 4 March, 2024
Maximilian E. Merkel and Claude Ederer
Phys. Rev. Research 6, 013230 (2024) - Published 4 March, 2024
Anzar Ali, Heung-Sik Kim, Poonam Yadav, Suheon Lee, Duhee Yoon, and Sungkyun Choi
Phys. Rev. Research 6, 013231 (2024) - Published 4 March, 2024
Guangming Lu, Francesco Cordero, Kimura Hideo, Xiangdong Ding, Zhijun Xu, Ruiqing Chu, Christopher J. Howard, Michael A. Carpenter, and Ekhard K. H. Salje
Phys. Rev. Research 6, 013232 (2024) - Published 4 March, 2024
Runqiu He, Yule Zhao, Chong Sheng, Jiachen Duan, Ying Wei, Changwei Sun, Liangliang Lu, Yan-Xiao Gong, Shining Zhu, and Hui Liu
Phys. Rev. Research 6, 013233 (2024) - Published 4 March, 2024
Yoonhyuk Rah and Kyoungsik Yu
Phys. Rev. Research 6, 013234 (2024) - Published 4 March, 2024
Akhil Pratap Singh, Kosuke Mitarai, Yasunari Suzuki, Kentaro Heya, Yutaka Tabuchi, Keisuke Fujii, and Yasunobu Nakamura
Phys. Rev. Research 6, 013235 (2024) - Published 4 March, 2024
P. H. Ouyang, S. R. He, Y. Z. Wang, Y. Q. Chai, J. X. He, H. Chang, and L. F. Wei
Phys. Rev. Research 6, 013236 (2024) - Published 4 March, 2024
Ryan Levy, Miguel A. Morales, and Shiwei Zhang
Phys. Rev. Research 6, 013237 (2024) - Published 5 March, 2024
Daniel Gunlycke, C. Stephen Hellberg, and John P. T. Stenger
Phys. Rev. Research 6, 013238 (2024) - Published 6 March, 2024
P. Elli Stamatopoulou, Wenhua Zhao, Álvaro Rodríguez Echarri, N. Asger Mortensen, Kurt Busch, Christos Tserkezis, and Christian Wolff
Phys. Rev. Research 6, 013239 (2024) - Published 5 March, 2024
Vira Shyta, Jeroen van den Brink, and Flavio S. Nogueira
Phys. Rev. Research 6, 013240 (2024) - Published 5 March, 2024
Joe Gibbs, Zoë Holmes, Matthias C. Caro, Nicholas Ezzell, Hsin-Yuan Huang, Lukasz Cincio, Andrew T. Sornborger, and Patrick J. Coles
Phys. Rev. Research 6, 013241 (2024) - Published 5 March, 2024
Marius S. Frank, Denis G. Artiukhin, Tsung-Han Lee, Yongxin Yao, Kipton Barros, Ove Christiansen, and Nicola Lanatà
Phys. Rev. Research 6, 013242 (2024) - Published 5 March, 2024
A. P. Babu, S. Alipour, A. T. Rezakhani, and T. Ala-Nissila
Phys. Rev. Research 6, 013243 (2024) - Published 5 March, 2024
Samuel Morales, Yuval Gefen, Igor Gornyi, Alex Zazunov, and Reinhold Egger
Phys. Rev. Research 6, 013244 (2024) - Published 6 March, 2024
Xinyuan Zheng and Edo Waks
Phys. Rev. Research 6, 013245 (2024) - Published 6 March, 2024
Jacob Bringewatt, Adam Ehrenberg, Tarushii Goel, and Alexey V. Gorshkov
Phys. Rev. Research 6, 013246 (2024) - Published 6 March, 2024
Yang Ge and Yashar Komijani
Phys. Rev. Research 6, 013247 (2024) - Published 6 March, 2024
Letian Chen, Hoai Nguyen Huynh, and Gunnar Pruessner
Phys. Rev. Research 6, 013248 (2024) - Published 7 March, 2024
Xuanran Zhu, Chao Zhang, Chenfeng Cao, Youning Li, Yiu Tung Poon, and Bei Zeng
Phys. Rev. Research 6, 013249 (2024) - Published 7 March, 2024
Th. K. Mavrogordatos
Phys. Rev. Research 6, 013250 (2024) - Published 7 March, 2024
Fabian Jäger, Nicola A. Spaldin, and Sayantika Bhowal
Phys. Rev. Research 6, 013251 (2024) - Published 7 March, 2024
Junhuan Li, Kouji Inagaki, and Kenta Arima
Phys. Rev. Research 6, 013252 (2024) - Published 7 March, 2024
Panagiotis G. Anastasiou, Yanzhu Chen, Nicholas J. Mayhall, Edwin Barnes, and Sophia E. Economou
Phys. Rev. Research 6, 013254 (2024) - Published 7 March, 2024
Xiu-Cai Jiang, Ze-Yi Song, Ze Ruan, and Yu-Zhong Zhang
Phys. Rev. Research 6, 013255 (2024) - Published 7 March, 2024
Minh Tam and Sebastiano Peotta
Phys. Rev. Research 6, 013256 (2024) - Published 7 March, 2024
A. Becker, G. M. Koutentakis, and P. Schmelcher
Phys. Rev. Research 6, 013257 (2024) - Published 8 March, 2024
Irene Ada Picatoste, Alessandra Colla, and Heinz-Peter Breuer
Phys. Rev. Research 6, 013258 (2024) - Published 8 March, 2024
Haijie Ren, Weiqiang Wang, Wentao Tang, and Rui Zhang
Phys. Rev. Research 6, 013259 (2024) - Published 8 March, 2024
Žiga Krajnik, Johannes Schmidt, Vincent Pasquier, Tomaž Prosen, and Enej Ilievski
Phys. Rev. Research 6, 013260 (2024) - Published 8 March, 2024
A. V. Yulin, E. S. Sedov, A. V. Kavokin, and I. A. Shelykh
Phys. Rev. Research 6, 013261 (2024) - Published 8 March, 2024
M. Roda-Llordes, D. Candoli, P. T. Grochowski, A. Riera-Campeny, T. Agrenius, J. J. García-Ripoll, C. Gonzalez-Ballestero, and O. Romero-Isart
Phys. Rev. Research 6, 013262 (2024) - Published 8 March, 2024
A. D. Sanchez, S. Chaitanya Kumar, and M. Ebrahim-Zadeh
Phys. Rev. Research 6, 013263 (2024) - Published 8 March, 2024
Michail Athanasakis-Kaklamanakis and Gerda Neyens
Phys. Rev. Research 6, 013264 (2024) - Published 11 March, 2024
Laura Budewig, Sang-Kil Son, Zoltan Jurek, Malik Muhammad Abdullah, Marina Tropmann-Frick, and Robin Santra
Phys. Rev. Research 6, 013265 (2024) - Published 11 March, 2024
Cong Jiang, Xiao-Long Hu, Zong-Wen Yu, and Xiang-Bin Wang
Phys. Rev. Research 6, 013266 (2024) - Published 11 March, 2024
Yu-Meng Gao, Yue-Jiao Zhang, Xiao-Lin Zhao, Xin-Yu Li, Shu-Hui Wang, Chen-Dong Jin, Hu Zhang, Ru-Qian Lian, Rui-Ning Wang, Peng-Lai Gong, Jiang-Long Wang, and Xing-Qiang Shi
Phys. Rev. Research 6, 013267 (2024) - Published 11 March, 2024
Enrico C. Domanti, Paolo Castorina, Dario Zappalà, and Luigi Amico
Phys. Rev. Research 6, 013268 (2024) - Published 12 March, 2024
Van Dong Pham, Yi Pan, Steven C. Erwin, and Stefan Fölsch
Phys. Rev. Research 6, 013269 (2024) - Published 12 March, 2024
Clemens von Korff Schmising, Somnath Jana, Ole Zülich, Denny Sommer, and Stefan Eisebitt
Phys. Rev. Research 6, 013270 (2024) - Published 12 March, 2024
Benjamin F. Schiffer, Dominik S. Wild, Nishad Maskara, Madelyn Cain, Mikhail D. Lukin, and Rhine Samajdar
Phys. Rev. Research 6, 013271 (2024) - Published 12 March, 2024
D. Li, K. G. Miller, J. R. Pierce, W. B. Mori, A. G. R. Thomas, and J. P. Palastro
Phys. Rev. Research 6, 013272 (2024) - Published 12 March, 2024
Tan Van Vu, Van Tuan Vo, and Keiji Saito
Phys. Rev. Research 6, 013273 (2024) - Published 12 March, 2024
Lorenzo Piro, Andrej Vilfan, Ramin Golestanian, and Benoît Mahault
Phys. Rev. Research 6, 013274 (2024) - Published 12 March, 2024
Jordi Piñero, Ricard Solé, and Artemy Kolchinsky
Phys. Rev. Research 6, 013275 (2024) - Published 12 March, 2024
Kaixin Tang, Hanjing Zhou, Houpu Li, Senyang Pan, Xueliang Wu, Hongyu Li, Nan Zhang, Chuanying Xi, Jinglei Zhang, Aifeng Wang, Xiangang Wan, Ziji Xiang, and Xianhui Chen
Phys. Rev. Research 6, 013276 (2024) - Published 12 March, 2024
Michael Kreiczer, Ben Z. Steinberg, and Yakir Hadad
Phys. Rev. Research 6, 013277 (2024) - Published 13 March, 2024
Nastasia Makki, Nicolai Lang, and Hans Peter Büchler
Phys. Rev. Research 6, 013278 (2024) - Published 13 March, 2024
Xin Wang, Huai-Bing Zhu, Tao Liu, and Franco Nori
Phys. Rev. Research 6, 013279 (2024) - Published 14 March, 2024
Mikel Garcia-de-Andoin, Álvaro Saiz, Pedro Pérez-Fernández, Lucas Lamata, Izaskun Oregi, and Mikel Sanz
Phys. Rev. Research 6, 013280 (2024) - Published 14 March, 2024
Lev Barash, Arman Babakhani, and Itay Hen
Phys. Rev. Research 6, 013281 (2024) - Published 14 March, 2024
Luca Cappelli, Francesco Tacchino, Giuseppe Murante, Stefano Borgani, and Ivano Tavernelli
Phys. Rev. Research 6, 013282 (2024) - Published 14 March, 2024
Lorenzo Bernazzani and Guido Burkard
Phys. Rev. Research 6, 013284 (2024) - Published 14 March, 2024
Jannik Ströhle and Richard Lopp
Phys. Rev. Research 6, 013285 (2024) - Published 15 March, 2024
Viktoria Blavatska and Bartlomiej Waclaw
Phys. Rev. Research 6, 013286 (2024) - Published 15 March, 2024
Gaspard Junot, Andrés Javier Manzano González, and Pietro Tierno
Phys. Rev. Research 6, 013287 (2024) - Published 15 March, 2024
Yen Chiu, Hao-Wei Hu, Yun-Xuan Zhang, and Lin I
Phys. Rev. Research 6, 013288 (2024) - Published 15 March, 2024
Dai-Nam Le, Pablo Rodriguez-Lopez, and Lilia M. Woods
Phys. Rev. Research 6, 013289 (2024) - Published 15 March, 2024
P. Sasorov, G. Bagdasarov, N. Bobrova, G. Grittani, A. Molodozhentsev, and S. V. Bulanov
Phys. Rev. Research 6, 013290 (2024) - Published 18 March, 2024
Jorge Tabanera-Bravo, Florian Vigneau, Juliette Monsel, Kushagra Aggarwal, Léa Bresque, Federico Fedele, Federico Cerisola, G. A. D. Briggs, Janet Anders, Alexia Auffèves, Juan M. R. Parrondo, and Natalia Ares
Phys. Rev. Research 6, 013291 (2024) - Published 18 March, 2024
Chenxing Luo, Yang Sun, and Renata M. Wentzcovitch
Phys. Rev. Research 6, 013292 (2024) - Published 18 March, 2024
P. M. Ireland, D. M. Walker, and J. D. Pritchard
Phys. Rev. Research 6, 013293 (2024) - Published 18 March, 2024
Johannes Pseiner, Manuel Erhard, and Mario Krenn
Phys. Rev. Research 6, 013294 (2024) - Published 18 March, 2024
Diego García-Martín, Martín Larocca, and M. Cerezo
Phys. Rev. Research 6, 013295 (2024) - Published 18 March, 2024
Liangrong Peng and Liu Hong
Phys. Rev. Research 6, 013296 (2024) - Published 18 March, 2024
Shi Feng, Adhip Agarwala, and Nandini Trivedi
Phys. Rev. Research 6, 013298 (2024) - Published 18 March, 2024
A. Muñoz de las Heras, C. Tabares, J. T. Schneider, L. Tagliacozzo, D. Porras, and A. González-Tudela
Phys. Rev. Research 6, 013299 (2024) - Published 19 March, 2024
Tsuyoshi Yamamoto and Yasuhiro Tokura
Phys. Rev. Research 6, 013300 (2024) - Published 19 March, 2024
Yiying Yan and Zhiguo Lü
Phys. Rev. Research 6, 013301 (2024) - Published 19 March, 2024
C. Wille, J. Eisert, and A. Altland
Phys. Rev. Research 6, 013302 (2024) - Published 19 March, 2024
Dualities between three paradigmatic models in condensed-matter physics (the two-dimensional classical Ising model, the toric code, and a class D topological superconductor) are explored from a tensor network perspective. Being exact and explicit in nature, the approach allows for the translation of properties of the three different systems on a microscopic level and for the linking of nontrivial phenomena such as topological excitations, edge modes, and disorder operators.
Alberto Mercurio, Gian Marcello Andolina, Francesco M. D. Pellegrino, Omar Di Stefano, Pablo Jarillo-Herrero, Claudia Felser, Frank H. L. Koppens, Salvatore Savasta, and Marco Polini
Phys. Rev. Research 6, 013303 (2024) - Published 19 March, 2024
Giovanni Canossa, Lode Pollet, Miguel A. Martin-Delgado, Hao Song (宋昊), and Ke Liu (刘科 子竞)
Phys. Rev. Research 6, 013304 (2024) - Published 19 March, 2024
Chunyang Ding, Martin Di Federico, Michael Hatridge, Andrew Houck, Sebastien Leger, Jeronimo Martinez, Connie Miao, David Schuster I, Leandro Stefanazzi, Chris Stoughton, Sara Sussman, Ken Treptow, Sho Uemura, Neal Wilcer, Helin Zhang, Chao Zhou, and Gustavo Cancelo
Phys. Rev. Research 6, 013305 (2024) - Published 20 March, 2024
Kyung-Su Kim (김경수) and Hosho Katsura (桂法称)
Phys. Rev. Research 6, 013307 (2024) - Published 20 March, 2024
Davide Nuzzi, Leonardo Banchi, Ruggero Vaia, Enrico Compagno, Alessandro Cuccoli, Paola Verrucchi, and Sougato Bose
Phys. Rev. Research 6, 013308 (2024) - Published 20 March, 2024
Philip Daniel Blocher, Karthik Chinni, Sivaprasad Omanakuttan, and Pablo M. Poggi
Phys. Rev. Research 6, 013309 (2024) - Published 21 March, 2024
Kenza Hammam, Gonzalo Manzano, and Gabriele De Chiara
Phys. Rev. Research 6, 013310 (2024) - Published 21 March, 2024
Andrea Solfanelli, Stefano Ruffo, Sauro Succi, and Nicolò Defenu
Phys. Rev. Research 6, 013311 (2024) - Published 21 March, 2024
Sebastian Schulz, Dennis Willsch, and Kristel Michielsen
Phys. Rev. Research 6, 013312 (2024) - Published 21 March, 2024
Paul Pöpperl, Igor V. Gornyi, David B. Saakian, and Oleg M. Yevtushenko
Phys. Rev. Research 6, 013313 (2024) - Published 22 March, 2024
Xianqi Tong and Su-Peng Kou
Phys. Rev. Research 6, 013314 (2024) - Published 22 March, 2024
Naruo Ohga and Sosuke Ito
Phys. Rev. Research 6, 013315 (2024) - Published 22 March, 2024
Matthew Ricks, Arianna E. Gleason, Francesca Miozzi, Hong Yang, Stella Chariton, Vitali B. Prakapenka, Stanislav V. Sinogeikin, Richard L. Sandberg, Wendy L. Mao, and Silvia Pandolfi
Phys. Rev. Research 6, 013316 (2024) - Published 22 March, 2024
Ji-Yang Sun, Kai Xu, and Zai-Dong Li
Phys. Rev. Research 6, 013317 (2024) - Published 22 March, 2024
Mohit Lal Bera, Tanmoy Pandit, Kaustav Chatterjee, Varinder Singh, Maciej Lewenstein, Utso Bhattacharya, and Manabendra Nath Bera
Phys. Rev. Research 6, 013318 (2024) - Published 22 March, 2024
Jens Samland, Shayne Bennetts, Chun-Chia Chen (陳俊嘉), Rodrigo González Escudero, Florian Schreck, and Benjamin Pasquiou
Phys. Rev. Research 6, 013319 (2024) - Published 25 March, 2024
I Gusti Ngurah Yudi Handayana, Chun-Chi Wu, Sumit Goswami, Ying-Cheng Chen, and H. H. Jen
Phys. Rev. Research 6, 013320 (2024) - Published 25 March, 2024
Zhaojian Zhang, Junbo Yang, and Zhihao Lan
Phys. Rev. Research 6, 013321 (2024) - Published 25 March, 2024
Yizhi Hu, Kun Yan, and Xiaobin Chen
Phys. Rev. Research 6, 013322 (2024) - Published 25 March, 2024
S. J. Liu, D. Wu, T. X. Hu, T. Y. Liang, X. C. Ning, J. H. Liang, Y. C. Liu, P. Liu, X. Liu, Z. M. Sheng, Y. T. Zhao, D. H. H. Hoffmann, X. T. He, and J. Zhang
Phys. Rev. Research 6, 013323 (2024) - Published 25 March, 2024
Przemysław Oliwa, Witold Bardyszewski, and Jacek Szczytko
Phys. Rev. Research 6, 013324 (2024) - Published 26 March, 2024
Nick S. Blunt, György P. Gehér, and Alexandra E. Moylett
Phys. Rev. Research 6, 013325 (2024) - Published 26 March, 2024
Siddhartha Patra, Saeed S. Jahromi, Sukhbinder Singh, and Román Orús
Phys. Rev. Research 6, 013326 (2024) - Published 26 March, 2024
Estelle Berthier, Haiqian Yang, Ming Guo, Pierre Ronceray, and Chase P. Broedersz
Phys. Rev. Research 6, 013327 (2024) - Published 26 March, 2024
Frederik Møller, Philipp Schüttelkopf, Jörg Schmiedmayer, and Sebastian Erne
Phys. Rev. Research 6, 013328 (2024) - Published 27 March, 2024
Paul G. Baity, Connor Maclean, Valentino Seferai, Joe Bronstein, Yi Shu, Tania Hemakumara, and Martin Weides
Phys. Rev. Research 6, 013329 (2024) - Published 27 March, 2024
J. de Jong, F. Hahn, N. Tcholtchev, M. Hauswirth, and A. Pappa
Phys. Rev. Research 6, 013330 (2024) - Published 27 March, 2024
Weiguo Yin
Phys. Rev. Research 6, 013331 (2024) - Published 27 March, 2024
W. Q. Yuan, Z. H. Zhao, S. P. Zhu, X. T. He, and B. Qiao
Phys. Rev. Research 6, 013332 (2024) - Published 28 March, 2024
M. S. Mirmoosa, M. H. Mostafa, A. Norrman, and S. A. Tretyakov
Phys. Rev. Research 6, 013334 (2024) - Published 28 March, 2024
Jasper van der Kolk, M. Ángeles Serrano, and Marián Boguñá
Phys. Rev. Research 6, 013337 (2024) - Published 29 March, 2024
M. Luo, C. Riconda, I. Pusztai, A. Grassi, J. S. Wurtele, and T. Fülöp
Phys. Rev. Research 6, 013338 (2024) - Published 29 March, 2024
Mikhail Padniuk, Emmanuel Klinger, Grzegorz Łukasiewicz, Daniel Gavilan-Martin, Tianhao Liu, Szymon Pustelny, Derek F. Jackson Kimball, Dmitry Budker, and Arne Wickenbrock
Phys. Rev. Research 6, 013339 (2024) - Published 29 March, 2024
J. Iñarrea and G. Platero
Phys. Rev. Research 6, 013340 (2024) - Published 29 March, 2024
K. Nakagawa, S. Tsuchiya, H. Taniguchi, and Y. Toda
Phys. Rev. Research 6, 019001 (2024) - Published 11 January, 2024