Alexander J. H. Houston, David H. Brainard, Hannah E. Smithson, and Daniel J. Read
Phys. Rev. Research 8, 023083 (2026) - Published 28 April, 2026
A model captures how the retina avoids tuning out during a fixed gaze.
Eli Chertkov, Andrew C. Potter, David Hayes, and Michael Foss-Feig
Phys. Rev. Research 8, 023057 (2026) - Published 16 April, 2026
Current quantum computers are noisy and require either scalable and costly error correction or nonscalable and cheap error detection to perform large-scale quantum simulations. Researchers present a scalable and cheap error detection framework that avoids postselection, which they use to simulate a nonequilibrium phase transition in an open quantum system on a trapped-ion quantum computer.
Qinshu Lyu and M. R. Tarbutt
Phys. Rev. Research 8, 023259 (2026) - Published 8 June, 2026
This work identifies the mechanisms responsible for trapping and cooling in a blue-detuned magneto-optical trap driven by a pair of closely spaced frequency components of opposite circular polarization. When the Zeeman splitting matches the frequency difference between the two components, there is a state that is dark to the beam propagating in one direction but not to the beam from the opposite direction, generating a radiation pressure force toward the field zero.
Soumya S. Kumar, Javier del Pino, Letizia Catalini, Alexander Eichler, and Oded Zilberberg
Phys. Rev. Research 8, 023298 (2026) - Published 15 June, 2026
The dynamical phase transitions of a Duffing resonator subjected to a bichromatic drive across the slow- and fast-beating regimes are mapped. An analytical threshold to observe these transitions based on an effective nonlinear response theory is provided, explaining the mechanism behind these processes. Complementary analytical treatments for the slow and fast regimes are supplied.
Daniel Miller, Kyano Levi, Lukas Postler, Alex Steiner, Lennart Bittel, Gregory A. L. White, Yifan Tang, Eric J. Kuehnke, Antonio A. Mele, Sumeet Khatri, Lorenzo Leone, Jose Carrasco, Christian D. Marciniak, Ivan Pogorelov, Milena Guevara-Bertsch, Robert Freund, Rainer Blatt, Philipp Schindler, Thomas Monz, Martin Ringbauer, and Jens Eisert
Phys. Rev. Research 8, 023318 (2026) - Published 18 June, 2026
This article shows that Rains’ quantum shadow enumerators, a powerful tool in quantum error correction, admit a direct physical interpretation in terms of outcome statistics of two-copy Bell measurements. This connection enables efficient learning protocols for these quantities and is demonstrated experimentally on a trapped-ion quantum device.
Aaron Liberman, Anton Golovanov, Slava Smartsev, Anda-Maria Talposi, Sheroy Tata, and Victor Malka
Phys. Rev. Research 8, L022001 (2026) - Published 1 April, 2026
Flying-focus wakefields promise to overcome the dephasing limit in laser-wakefield acceleration, enabling the acceleration of higher energy electrons. This works experimentally demonstrates that such wakefields can maintain the coherent structures necessary for accelerating ultrarelativistic electrons. It also shows that tuning the propagation velocity of the wakefield impacts the maximum electron energy, suggesting the partial mitigation of dephasing.
Alexandar P. Rollings and Jonathan D. Weinstein
Phys. Rev. Research 8, L022002 (2026) - Published 1 April, 2026
The nuclear spin coherence of HD molecules trapped in solid hydrogen is measured. The proton coherence time increases as the magnetic impurities in the solid are reduced, until a limit from the solid itself is reached. Because of the unusual nature of solid hydrogen, long coherence times can be obtained in the solid phase without magic-angle spinning.
S. W. Huang et al.
Phys. Rev. Research 8, L022003 (2026) - Published 1 April, 2026
Three-neutron emission from the neutron-rich unbound nucleus He is studied through direct detection of the emitted neutrons. The measured three-neutron invariant-mass spectrum and correlations constrain the decay mechanism and the possible contribution of a trineutron component.
Loek van Everdingen, Jaimy Plugge, Tim M. Fuchs, Guido L. van de Stolpe, Dalal Benali, Thijmen de Jong, Jasper Bijl, Wim A. Bosch, and Tjerk H. Oosterkamp
Phys. Rev. Research 8, L022004 (2026) - Published 1 April, 2026
Passive cooling of a 700 Hz massive (1.5 ng) mechanical cantilever down to 6.1(4) mK by means of nuclear demagnetization is presented, as confirmed by detecting its thermal motion via a lock-in-based detection scheme. At this temperature, the thermal motion of the resonator is still clearly distinguishable from the background noise and the origin of its thermal saturation are discussed.
K. Tateishi, Y. Saito, D. Takahashi, K. Sekiguchi, K. Aradono, K. Hirasawa, Y. Maeda, Y. Nagao, H. Nishibata, S. Otsuka, H. Sakai, H. Sugahara, K. Suzuki, T. Uesaka, T. Wakasa, and A. Watanabe
Phys. Rev. Research 8, L022005 (2026) - Published 3 April, 2026
Radiation damage caused by radicals generated during high-intensity beam irradiation can be repaired through annealing. On the basis of this concept, researchers have developed a polarized proton solid target operating at room temperature using dynamic nuclear polarization with photoexcited triplet electrons.
Yi-Yi Mao, Chao Zeng, Fei-Fei Wu, Yan-Jun Xie, Tao Yuan, Yu-Ao Chen, Han-Ning Dai, and Jian-Wei Pan
Phys. Rev. Research 8, L022006 (2026) - Published 6 April, 2026
A staggered Su-Schrieffer-Heeger ladder is realized in an atomic momentum chain by introducing fully controlled next-nearest-neighbor couplings. By tracking the bulk dynamics of wave packets, the experiment maps the two-dimensional topological phase diagram of the ladder model and identifies three phases characterized by winding numbers.
David Linteau, Saverio Moroni, Giuseppe Carleo, and Markus Holzmann
Phys. Rev. Research 8, L022007 (2026) - Published 7 April, 2026
A neural quantum state wave function for high-pressure atomic hydrogen is presented that treats electrons and protons within the same variational framework, both under the Born-Oppenheimer approximation and beyond it. Using this approach, the calculated ground-state energies match or improve on established projector Monte Carlo benchmarks, and the simulations capture the change from crystalline order to a liquid-like phase under extreme compression.
Rustem Sharipov, Anastasiia Tiutiakina, Alexander Gorsky, Vladimir Gritsev, and Anatoli Polkovnikov
Phys. Rev. Research 8, L022008 (2026) - Published 9 April, 2026
Hilbert space geometry defined by the quantum geometric tensor is analyzed for parameter-dependent random matrix Hamiltonians. The quantum metric forms a smooth manifold in the ergodic regime but develops a conical defect near integrable points.
M. Lamač, P. Valenta, U. Chaulagain, J. Nejdl, T. M. Jeong, and S. V. Bulanov
Phys. Rev. Research 8, L022009 (2026) - Published 10 April, 2026
A nonlinear plasma wave driven by a proton or electron particle beam can form a relativistic mirror that compresses and amplifies an optical laser into a coherent attosecond x-ray pulse. By comparing first-principles theory with multidimensional particle-in-cell simulations, this work identifies beam-driven relativistic plasma mirrors as a promising route for bright coherent x-ray generation.
Wenhao Ye, Li You, and Cheng-Qian Xu
Phys. Rev. Research 8, L022010 (2026) - Published 10 April, 2026
Bipartite entanglement in anyonic systems, whose state spaces are shaped by fusion rules and superselection constraints, is investigated. The work formulates three entanglement measures within a resource-theoretic framework and establishes an additive decomposition of total entanglement into conventional entanglement and anyonic charge entanglement.
Jay Armas, Akash Jain, and Ruben Lier
Phys. Rev. Research 8, L022011 (2026) - Published 13 April, 2026
A thermal hydrodynamic framework is developed for active nematics coupled to an environment and is used to analyze temperature dynamics near steady states. While linear temperature fluctuations remain insensitive to activity owing to mechanosensitive fuel consumption, spontaneous flow in confined geometries generates distinctive inhomogeneous temperature profiles that provide a thermal signature of activity.
Lukas Hupe, Joanna M. Materska, David Zwicker, Ramin Golestanian, Bartlomiej Waclaw, and Philip Bittihn
Phys. Rev. Research 8, L022012 (2026) - Published 13 April, 2026
In a mixture of growing and motile particles, the proliferating background can act as a dynamic medium that drives motile particles into dense clusters. By constructing an effective model, researchers trace this behavior to growth-induced fluctuations and emergent attractive interactions, revealing a distinct mechanism of phase separation in mixed active matter, with potential relevance for tissues, tumors, and biofilms.
Erickson Tjoa and J. Ignacio Cirac
Phys. Rev. Research 8, L022013 (2026) - Published 14 April, 2026
By exploiting a Fock-like representation of matrix-product operators, this work provides an ansatz for matrix-product operators for quantum fields. The ansatz allows for explicit constructions of many nontrivial families of continuous matrix-product operators and unitaries and constrains the class of matrix-product operators that have well-defined continuum limits.
Linfeng Piao and Anne Juel
Phys. Rev. Research 8, L022014 (2026) - Published 14 April, 2026
This work presents a method for producing size-tunable monodisperse emulsions utilizing the interfacial instability that arises near the end walls of a horizontally vibrated vessel containing two immiscible liquid layers. This approach allows for the upscaled production of monodisperse emulsions.
Juan Polo, Wayne J. Chetcuti, Anna Minguzzi, Andreas Osterloh, and Luigi Amico
Phys. Rev. Research 8, L022015 (2026) - Published 15 April, 2026
A static impurity in a mesoscopic ring of SU() fermions in an artificial gauge field provides a controlled setting to study how interactions, barrier strength, and the number of internal components jointly determine the matter-wave flow induced by the applied effective flux. The resulting competition between single-particle screening and specific collective dynamics produces distinct signatures in the density and persistent currents, including flux fractionalization and symmetry-selective gap openings.
Jordane Preto, Vania Calandrini, Elena Floriani, Gergely Katona, and Marco Pettini
Phys. Rev. Research 8, L022016 (2026) - Published 16 April, 2026
This work explores energy condensation in a classical Hamiltonian system of coupled vibrational modes interacting with a thermal bath and an energy source. It shows how low-frequency modes become preferentially excited under nonequilibrium conditions and examines the robustness of this behavior beyond Fröhlich’s resonance conditions. It also discusses possible implications for vibrational energy redistribution in proteins.
Viktor Holubec, Alexander Fischer, Giovanni Volpe, and Frank Cichos
Phys. Rev. Research 8, L022017 (2026) - Published 22 April, 2026
Theory, simulations, and experiments on thermophoretic microswimmers are combined to show that time-delayed responses of active particles to a spatially varying activity landscape produce a tunable density accumulation and a polarization inversion controlled by the competition between the response delay and the diffusion length
Matéo F. L. Roinard-Chauvet, Axel J. M. Deenen, and Dirk Grundler
Phys. Rev. Research 8, L022018 (2026) - Published 27 April, 2026
Using a modified time-dependent Ginzburg–Landau formalism, this work explores vortices bent across differently tilted superconductor/normal metal interfaces and identifies a characteristic refraction law. If subjected to a transport current, a refracted vortex core is found to develop a relative displacement in neighboring materials owing to unequal vortex viscosities.
T. Botzung, G. Creutzer, C. Sayrin, and J. Schachenmayer
Phys. Rev. Research 8, L022019 (2026) - Published 30 April, 2026
The range of dipolar interactions in optical tweezer atom arrays is made tunable by strategically positioning far-detuned relay atoms that act as controllable mediators of excitation exchange.
Misha Yutushui, Arjun Dey, and David F. Mross
Phys. Rev. Research 8, L022020 (2026) - Published 30 April, 2026
Many candidate non-Abelian quantum Hall states are accompanied by nearby “daughter” states that have been proposed as experimental fingerprints of the parent topological order. Using exact diagonalization and trial wave functions, researchers provide a numerical test of this parent–daughter relationship by demonstrating that the same interactions favor both states.
S. J. Thomson, J.-W. Barotta, and D. M. Harris
Phys. Rev. Research 8, L022021 (2026) - Published 1 May, 2026
Supercritical Faraday waves are used to drive structural rearrangements of small clusters of spherical particles bound by capillary attractions. Direct measurement of transition statistics between metastable cluster configurations reveals a nonzero entropy production rate reflecting broken detailed balance, in quantitative agreement with a theoretical active-matter model.
Samuel Schöpa, Lina Bielke, Falk-Erik Wiechmann, Franziska Fennel, and Dieter Bauer
Phys. Rev. Research 8, L022022 (2026) - Published 4 May, 2026
This work analyzes the phase and polarization structure of below-threshold high-harmonic generation using minimal few-level models. It shows that in a driven two-level system, harmonics below and above the transition frequency exhibit a qualitatively different phase behavior, a feature that directly imprints on the polarization of harmonics emitted from systems with orthogonal transitions.
Filipe C. Thewes, Yicheng Qiang, Oliver W. Paulin, and David Zwicker
Phys. Rev. Research 8, L022023 (2026) - Published 4 May, 2026
The interplay between phase separation and nonlocal interactions is identified as a unifying mechanism underlying the morphologies of liquid droplets across systems ranging from living cells to elastic materials and charged liquids. Identifying short- and long-range interactions as fundamentally distinct classes, this work uncovers generic phase transitions that produce distinct droplet morphologies and their coexistence, bridging conventional phase separation and pattern formation.
Juven Wang
Phys. Rev. Research 8, L022024 (2026) - Published 5 May, 2026
Dark matter may consist of long-range entangled topological order, so gapped anyonlike excitations may decay to generate the standard model’s lepton asymmetry.
Joseph M. Ryan, Simon Gorbaty, Thomas J. Kessler, Mitchell G. Peaks, Stephen W. Teitsworth, and Crystal Noel
Phys. Rev. Research 8, L022025 (2026) - Published 7 May, 2026
First-passage time distributions for classical stochastic processes have been extensively studied both theoretically and experimentally. By contrast, these distributions for quantum dynamics remain largely unexplored and carry deep implications for both fundamental physics and the development of emerging quantum technologies. This work reports single-shot projective measurements of the quantized motion of a trapped ion subject to electric-field noise using composite-phase laser sequences. Such sequences act as an effective quantum filter for constructing quantum first-passage time distributions of the ion energy.
Longwen Zhou
Phys. Rev. Research 8, L022026 (2026) - Published 11 May, 2026
A theoretical framework based on Cauchy’s argument principle on the generalized Brillouin zone is developed to characterize gapless symmetry-protected topological phases in periodically driven non-Hermitian systems, providing unified winding numbers, bulk-edge correspondence, and entanglement characteristics at criticality. Applying this theory to a periodically quenched non-Hermitian Su-Schrieffer-Heeger chain reveals gapless symmetry-protected topological phases, where critical edge modes—including modes unique to the non-Hermitian Floquet settings—survive at phase transitions.
R. Jafari and Alireza Akbari
Phys. Rev. Research 8, L022027 (2026) - Published 13 May, 2026
The emergence of Kibble-Zurek scaling is shown to be controlled by the quasiparticle modes participating in the dynamics rather than by quantum criticality alone. As a result, quenches across critical points may remain effectively adiabatic, while noncritical quenches can still exhibit conventional Kibble-Zurek scaling.
Nir Sherf, Rémi Goerlich, Barak Hirshberg, and Yael Roichman
Phys. Rev. Research 8, L022028 (2026) - Published 14 May, 2026
Stochastic resetting of Brownian motion in a harmonic potential always relaxes faster than thermal equilibration, with both the relaxation speed and the resulting nonequilibrium steady state governed by a single dimensionless parameter combining the resetting rate, viscosity, and potential stiffness.
Tobias Dannegger, Imre Hagymási, Levente Rózsa, and Ulrich Nowak
Phys. Rev. Research 8, L022029 (2026) - Published 15 May, 2026
An investigation of the spin-flop transition of a quantum spin model for hematite using different theoretical methods shows that, despite the presence of long-range order and large quantum numbers, correctly accounting for quantum fluctuations is essential to describe this phase transition accurately at low temperatures.
Yongxu Fu and Yi Zhang
Phys. Rev. Research 8, L022030 (2026) - Published 15 May, 2026
By introducing conditional boundary conditions, a winding-control mechanism is established in non-Hermitian systems that links the spectral winding number, the residual imaginary velocity, and the worldline winding number. This mechanism enables the selective collapse of specific loop-type periodic boundary condition spectra onto their open boundary condition counterparts, accompanied by a composite reconstruction of the Brillouin zone and the generalized Brillouin zone, thereby realizing a topological transition between distinct spectral winding configurations.
Sören Arlt, Mario Krenn, and Xuemei Gu
Phys. Rev. Research 8, L022031 (2026) - Published 18 May, 2026
This work presents experimental proposals for nonlocal photonic quantum gates that act on spatially separated photons by exploiting quantum indistinguishability via path identity rather than preshared entanglement or Bell-state measurements. The underlying ideas were generated by the multiagent large language model system AI-Mᴀɴᴅᴇʟ, translated into concrete experimental blueprints by the automated quantum-optics design tool PʏTʜᴇᴜs, and subsequently interpreted and generalized into broader design principles.
Pedro Jiménez-González, Miguel C. Soriano, and Lucas Lacasa
Phys. Rev. Research 8, L022032 (2026) - Published 18 May, 2026
Abnormally large learning rates in the optimization of neural networks induce a transition to chaos of the training dynamics, where the network eventually loses its ability to learn the correct representation. However, close to the onset of chaotic network trajectories, the network still learns and can do so at an accelerated pace.
Christian A. Schröder, John H. Hack, Joshua L. Edwards, Zhiyu Zhang, J. Tyler Kenyon, Qiyue Wang, Han Wang, Daniel M. Neumark, and Stephen R. Leone
Phys. Rev. Research 8, L022033 (2026) - Published 22 May, 2026
This work dissociates methyl iodide with a short pulse of ultraviolet light and tracks the temporal evolution of the emerging methyl radicals via their soft x-ray absorption. The “umbrella” vibrational mode of the radicals is excited coherently to a high degree, and by using a quantum-mechanical model of the x-ray transition energy shift, the time dependence of the vibrational wave function and thereby the real-space motion of the radicals is reconstructed from the experiment.
Yuta Kimoto, Hidetoshi Masuda, Jun-ichiro Ohe, Shoya Sakamoto, Takeshi Seki, and Yoshinori Onose
Phys. Rev. Research 8, L022034 (2026) - Published 26 May, 2026
Helimagnetic structures—magnetic textures with chirality or handedness—host a domain wall as the interface between domains with opposite chirality. This helimagnetic domain wall is revealed to be highly mobile under electric current, leading to efficient chirality control with lower current density.
Mikel Garcia de Andoin and Mikel Sanz
Phys. Rev. Research 8, L022035 (2026) - Published 26 May, 2026
Digital-analog quantum computing combines the flexibility of the gate-based paradigm with the robustness of analog quantum systems. Minimizing the total time of digital-analog circuits is an NP-hard problem. This work derives a tight upper bound on the optimal circuit time that scales linearly with the number of couplings. This result enables accurate resource estimation and allows fair comparisons with alternative paradigms.
Esther Hänggi and Severin Winkler
Phys. Rev. Research 8, L022036 (2026) - Published 28 May, 2026
This work investigates whether quantum communication protocols allow confidential access to a remote database. It shows that any protocol that does not reveal which item is retrieved allows the user to reconstruct the entire database.
Yi Li and Grayson R. Frazier
Phys. Rev. Research 8, L022037 (2026) - Published 29 May, 2026
Pairing between Fermi surfaces with unequal Chern-number parity is shown to produce an exotic superconducting state characterized by half-integer monopole harmonics and a spinor-valued order parameter. Consequences include a single Bogoliubov-Weyl node that “violates” the Nielsen-Ninomiya theorem, protected gapless surface states, and a fractional Mermin-Ho relation for the superfluid velocity.
Matan Shmunik and Michael Assaf
Phys. Rev. Research 8, L022038 (2026) - Published 1 June, 2026
Researchers study non-Markovian epidemic models in a well-mixed setting and reveal that the nonexponential waiting-time distributions between successive infection (and/or recovery) events can significantly alter the final outbreak-size distribution and disease lifetime compared with the Markovian case.
Jakub Garwoła and Dvira Segal
Phys. Rev. Research 8, L022039 (2026) - Published 2 June, 2026
Researchers derive a nonperturbative mapping method for open quantum systems strongly coupled to quantized field modes and apply it to the open Rabi model and the Dicke-Heisenberg lattice model. They demonstrate advantage over conventional approaches in terms of error scaling with Hilbert space dimension and reveal cavity-mediated spin correlations analytically and numerically, achieving computational savings over brute-force simulations.
Ao Chen, Vighnesh Dattatraya Naik, and Markus Heyl
Phys. Rev. Research 8, L022040 (2026) - Published 3 June, 2026
A new study introduces the convolutional transformer wave function, an architecture that, unlike earlier transformer-based approaches, properly harnesses the attention mechanism while respecting the symmetries of quantum systems, setting new accuracy benchmarks for frustrated magnets and quantum dynamics.
Yue Dai, Zhiyu Wang, Xinzhi Zhao, Xinglei Yu, and Chengjie Zhang
Phys. Rev. Research 8, L022041 (2026) - Published 3 June, 2026
The trade-off between local maximum coherence and quantum mutual information is experimentally investigated. It is found that their sum is bounded by a definitive upper limit. This result reveals a complementarity between local and global quantum resources.
D. A. Millar, L. W. Anderson, E. Altamura, O. Wallis, M. E. Sahin, J. Crain, and S. J. Thomson
Phys. Rev. Research 8, L022042 (2026) - Published 3 June, 2026
A variational method is presented for preparing excited eigenstates of many-body quantum systems, combining a shift-invert spectral transformation with imaginary time evolution to avoid explicit matrix inversion. Results are demonstrated for disordered spin chains using tensor-network simulations within a framework compatible with hybrid quantum-classical implementations.
Giorgia Iori, Klejdja Xhani, Woo Jin Kwon, Davide Emilio Galli, and Luca Galantucci
Phys. Rev. Research 8, L022043 (2026) - Published 5 June, 2026
Understanding vortex dynamics in three-dimensional superfluid systems under clean and controlled conditions emerges as a key challenge in quantum and classical fluid research. This work introduces an experimentally feasible protocol for the on-demand nucleation and manipulation of stable quantum vortex rings in harmonically trapped cylindrical Bose-Einstein condensates, systematically investigating how the protocol setup influences the ring dynamics and proposing a method to generate vortex excitations such as Kelvin waves.
Xingbo Wei, Zhentian Xie, Tong Liu, Gao Xianlong, and Yunbo Zhang
Phys. Rev. Research 8, L022044 (2026) - Published 5 June, 2026
Reentrant transitions are investigated in a one-dimensional Raman lattice with spin-orbit coupling and a Zeeman potential containing both uniform and quasiperiodic components. A reentrant criticality transition with multiple entries into the critical phase is identified, extending reentrant phenomena in quasiperiodic systems to include critical states in addition to extended and localized states.
Jingtian Shi, Jennifer Cano, and Nicolás Morales-Durán
Phys. Rev. Research 8, L022045 (2026) - Published 8 June, 2026
This work studies ideal and nearly ideal Chern bands relevant to semiconductor moiré materials. It shows how Berry curvature inhomogeneity destabilizes fractional Chern insulators in favor of charge density waves and explains this mechanism using the single-mode approximation.
Su Direkci, Manuel Endres, and Tuvia Gefen
Phys. Rev. Research 8, L022046 (2026) - Published 10 June, 2026
A sequential weak measurement protocol is developed for Bayesian quantum frequency estimation with coherent spin states in which weakly entangled ancilla qubits track the sensing qubits during free evolution to suppress phase slip errors and extend the dynamic range. The protocol attains Heisenberg scaling with time and saturates the Cramér-Rao precision bound asymptotically across a large frequency bandwidth.
Giovanni Barontini
Phys. Rev. Research 8, L022047 (2026) - Published 11 June, 2026
An ultracold atomic gas is used as a self-contained miniuniverse to show that time can be defined without an external clock. It’s demonstrated that entropy exchange between different sectors of the system provides an internal time that robustly orders the dynamics and yields a Schrödinger description of the observed evolution.
Matthieu Sarkis and Alexandre Tkatchenko
Phys. Rev. Research 8, L022048 (2026) - Published 11 June, 2026
Fermionic nonstabilizerness, or magic, in molecular electronic ground states along diatomic bond-stretching coordinates is analyzed. For H and several other dimers, magic measures form an intermediate-separation peak near rapid changes of the binding-energy curve, providing new quantum-information-theoretic insight on molecular bonding beyond entanglement.
Patrick Giese, Mathias Stokkebye Nissen, Stig Helveg, and Jakob Schiøtz
Phys. Rev. Research 8, L022049 (2026) - Published 12 June, 2026
Enhanced atomic vibrations have previously been observed near edges of two-dimensional materials with high-resolution transmission electron microscopy (HR-TEM). Here this observation is accounted for by localized phonon edge modes by including correlated atom vibrations in HR-TEM image simulations.
Shunsuke Kitou, Akitoshi Nakano, Masato Imaizumi, Yuiga Nakamura, Yuto Nakamura, Hideo Kishida, Taka-hisa Arima, and Ichiro Terasaki
Phys. Rev. Research 8, L022050 (2026) - Published 15 June, 2026
Using synchrotron x-ray diffraction, optical microscopy, and Raman spectroscopy, current-induced structural phase transitions in single-crystal vanadium dioxide are investigated. Successive transitions to two distinct metallic tetragonal phases are observed, including a nonequilibrium structure with isotropic lattice expansion inaccessible under thermal equilibrium.
Giovanni Midei, Jordi Boronat, and Grigory E. Astrakharchik
Phys. Rev. Research 8, L022051 (2026) - Published 17 June, 2026
A study of a gas of fermionic dimers in a quasi-two-dimensional geometry induced by strong harmonic confinement in one direction is presented. Fixed-node diffusion Monte Carlo calculations are used to quantify the effects of confinement and finite interaction range on the equation of state and density profiles, with the results benchmarked against analytical theories.
Nathan C. J. Coombs, Peter Lewin-Jones, Mykyta V. Chubynsky, and James E. Sprittles
Phys. Rev. Research 8, L022052 (2026) - Published 17 June, 2026
This work investigates the oscillatory dynamics and subsequent sustained bouncing behavior of Leidenfrost hydrogels, a phenomenon that has received little theoretical attention to date. Building on previous approaches toward drop impacts and Leidenfrost drops, a computational model is developed to capture the oscillatory dynamics and analyze the mechanism of energy injection that leads to sustained bouncing.
András Szabó and R. Chitra
Phys. Rev. Research 8, L022053 (2026) - Published 18 June, 2026
Periodically driven collective excitations emerging when two distinct symmetry-broken phases give rise to a manifold of enlarged symmetry are explored. The work proposes that the resulting driven phase diagram hosting out-of-equilibrium intertwined phases is accessible in state-of-the-art matter-cavity experimental setups.
Ohad Segal, Noa Konforty, Oded Schiller, Maxwell J. Tolchin, Tony Yasniger, Soham Saha, Ryan W. Spangler, Jon-Paul Maria, Yonatan Plotnik, and Mordechai Segev
Phys. Rev. Research 8, L022054 (2026) - Published 22 June, 2026
This work demonstrates subcycle order-unity variations in the refractive index at optical frequencies and measures the time-refraction of a probe wave propagating in the modulated medium.
D. E. Veres, P. Arrutia, S. Cettour Cave, B. H. F. Lindström, M. Giovannozzi, L. E. Pauwels, F. F. Van der Veken, F. M. Velotti, and G. Franchetti
Phys. Rev. Research 8, L022055 (2026) - Published 22 June, 2026
A recent theoretical investigation indicated that combining particle trapping in resonance islands with planar channeling in a bent crystal may offer a promising option for a low-loss, or even septum-free, slow-extraction technique. This work reports on the successful proof-of-principle experiment conducted at the CERN Super Proton Synchrotron, in which stable islands and a bent crystal were employed to split and channel a circulating beam onto an absorber, thereby emulating slow extraction.
Zhiyuan Wang
Phys. Rev. Research 8, L022056 (2026) - Published 23 June, 2026
A secret-communication challenge is proposed that demonstrates a distinctive physical consequence of paraparticles in topological phases of matter. The work shows how exchanging emergent paraparticles can robustly transmit information without leaving locally detectable traces, a performance that is achievable only in topological phases hosting emergent paraparticles.
Jim Skulte, Jayson G. Cosme, and Ludwig Mathey
Phys. Rev. Research 8, L022057 (2026) - Published 23 June, 2026
A transversely pumped atom-cavity system operating near a critical transition is proposed as a rotation sensor. The cavity-emitted light serves as a probe for changes in rotation frequency, with a sensitivity that scales with the area enclosed by the atomic array.
Hao-Kun Ke, Lie-Run Tian, Jun-Feng Liu, Pei-Hao Fu, Jun Wang, and Hu Xu
Phys. Rev. Research 8, L022058 (2026) - Published 25 June, 2026
Researchers demonstrate intrinsic nonreciprocal thermoelectric transport in electron-phonon coupled nanowire devices, arising from asymmetric phonon emission and absorption and structural asymmetry. The intrinsic nonreciprocity results in a load-resistor resistance reduction effect that violates Ohm’s addition law in the incoherent limit.
Sven Jandura, Laura Pecorari, and Guido Pupillo
Phys. Rev. Research 8, L022059 (2026) - Published 26 June, 2026
Optimizing quantum gates for logical errors—rather than solely focusing on physical fidelity—is found to improve surface code performance in neutral-atom arrays. Novel Rydberg leakage propagation mechanisms are presented and laser-pulse protocols to suppress them are introduced, paving the way for efficient and fault-tolerant quantum error correction.
Yanis Baouche, Magali Le Goff, Thomas Franosch, and Christina Kurzthaler
Phys. Rev. Research 8, L022060 (2026) - Published 29 June, 2026
Numerical simulations of force-dipole microswimmers near a no-slip wall reveal how hydrodynamic interactions and diffusion shape first-passage-time statistics. The results show that wall-induced hindered diffusion can strongly delay wall encounters, while active hydrodynamic attraction produces distinct behaviors for pushers and pullers, including a nonmonotonic dependence on dipole strength.
Alexei V. Prokhorov, Mikhail Yu. Gubin, Alexander V. Shesterikov, Aleksey V. Arsenin, Valentyn S. Volkov, and Andrey B. Evlyukhin
Phys. Rev. Research 8, L022061 (2026) - Published 29 June, 2026
A double-membrane 3R-MoS metasurface composed of two distinct hole arrays and supporting high-order multipole resonances is investigated for the generation of biphoton pairs through spontaneous parametric down-conversion (SPDC). The combined effect of the second-order nonlinear response of 3R-MoS and dual-resonant excitation of the metasurface leads to an increased SPDC photon generation rate relative to an unpatterned flake.
Karl Pelka, Matteo Aquilina, and André Xuereb
Phys. Rev. Research 8, L022062 (2026) - Published 29 June, 2026
Entanglement transport in nonreciprocal continuous-variable quantum networks is investigated, showing that directional coupling enables controlled routing of quantum correlations between nodes. The work identifies a regime in which entanglement is efficiently transmitted and quantifies how excess excitations induced by strong squeezing ultimately limit the mechanism studied.
Daniel Spasic-Mlacak and Nigel R. Cooper
Phys. Rev. Research 8, L022063 (2026) - Published 29 June, 2026
Motivated by polaritonic platforms, this work investigates how nonlocal confinement affects the edge physics of fractional quantum Hall systems. It is found that the conventional edge modes are lost, to be replaced by new modes arising from bulk excitations—such as the graviton and quasielectron—that become gapless at the boundary.
Christopher J. Turner, Marcin Szyniszewski, Bhaskar Mukherjee, Ronald Melendrez, Hitesh J. Changlani, and Arijeet Pal
Phys. Rev. Research 8, L022064 (2026) - Published 30 June, 2026
Spectral properties and zero-energy degeneracy provide a way to characterize thermalization in nonintegrable quantum many-body systems. This work studies a bond-staggered Heisenberg chain with spectral reflection symmetry and continuous non-Abelian SU(2) symmetry, using character theory to count exponentially many zero-energy states and constructing exact low-entangled few-magnon eigenstates that are stable under many perturbations.
M. Avrigeanu, E. Šimečková, J. Mrázek, X. Ledoux, J. Novak, M. Štefánik, M. Ansorge, A. Cassisa, J. Kozic, C. Costache, and V. Avrigeanu
Phys. Rev. Research 8, 023001 (2026) - Published 1 April, 2026
Andrei Trebushinin, Gianluca Geloni, and Svitozar Serkez
Phys. Rev. Research 8, 023002 (2026) - Published 1 April, 2026
Peter Mlkvik, Lena Geistlich, Nicola A. Spaldin, and Claude Ederer
Phys. Rev. Research 8, 023003 (2026) - Published 1 April, 2026
Anoop Mutneja and Kenneth S. Schweizer
Phys. Rev. Research 8, 023004 (2026) - Published 1 April, 2026
Arpita Das, Albert Li Tao, Luke M. Fernley, Fritz von Gierke, Philip D. Gregory, Simon L. Cornish, Jeremy M. Hutson, Romain Vexiau, and Olivier Dulieu
Phys. Rev. Research 8, 023005 (2026) - Published 1 April, 2026
Marcel Niedermeier, Adrien Moulinas, Thibaud Louvet, Jose L. Lado, and Xavier Waintal
Phys. Rev. Research 8, 023006 (2026) - Published 2 April, 2026
Adithi Udupa, Timo Hillmann, Rabsan Galib Ahmed, Andrea Smirne, and Giulia Ferrini
Phys. Rev. Research 8, 023007 (2026) - Published 2 April, 2026
Martin Sundermann, Naoki Ito, Daisuke Takegami, Chun-Fu Chang, Sheng-Huai Chen, Chang-Yang Kuo, Simone G. Altendorf, Andrei Gloskovskii, Hlynur Gretarsson, Eric D. Bauer, Shin-ichi Fujimori, Jan Kuneš, Liu Hao Tjeng, Andrea Severing, and Atsushi Hariki
Phys. Rev. Research 8, 023008 (2026) - Published 2 April, 2026
Takafumi Kitazawa, Yasuyuki Shimura, Takahiro Onimaru, Shun Tsuchida, Katsunori Kubo, Yoshinori Haga, Hironori Sakai, Yoshifumi Tokiwa, Shinsaku Kambe, and Yo Tokunaga
Phys. Rev. Research 8, 023009 (2026) - Published 2 April, 2026
I. Tazes, S. Passalidis, G. Andrianaki, A. Skoulakis, C. Karvounis, D. Mancelli, J. Pasley, E. Kaselouris, I. Fitilis, M. Bakarezos, E. P. Benis, N. Papadogiannis, V. Dimitriou, and M. Tatarakis
Phys. Rev. Research 8, 023010 (2026) - Published 2 April, 2026
Zerong Guo, Zonghua Liu, Shuguang Guan, Charo I. del Genio, Stefano Boccaletti, and Jie Zhou
Phys. Rev. Research 8, 023011 (2026) - Published 2 April, 2026
Aaron Daniel, Matteo Brunelli, Aashish A. Clerk, and Patrick P. Potts
Phys. Rev. Research 8, 023012 (2026) - Published 2 April, 2026
Zikang Ge, Jinhao Hu, Shengyuan Peng, Wei Kang, Xiaofei Shen, Yanbo Xie, and Jianming Xue
Phys. Rev. Research 8, 023013 (2026) - Published 6 April, 2026
Soleh Kh. Muminov, Evgeniy O. Kiktenko, Anastasiia S. Nikolaeva, Denis A. Drozhzhin, Sergey I. Matveenko, Aleksey K. Fedorov, and Georgy V. Shlyapnikov
Phys. Rev. Research 8, 023014 (2026) - Published 2 April, 2026
A. D. Chen, M. C. Gandikota, M. J. Kim, and A. Cacciuto
Phys. Rev. Research 8, 023015 (2026) - Published 2 April, 2026
Ao Xu, Nichen Yu, Dong Huang, and Yan Feng
Phys. Rev. Research 8, 023016 (2026) - Published 3 April, 2026
Sagar Dam, J. F. Ong, Sk Rakeeb, Ameya Parab, Aparajit C, Anandam, Amit D. Lad, Yash M. Ved, M. Krishnamurthy, K. A. Tanaka, and G. Ravindra Kumar
Phys. Rev. Research 8, 023017 (2026) - Published 6 April, 2026
Abhijit Sen, Illya V. Lukin, Kurt Jacobs, Lev Kaplan, Andrii G. Sotnikov, and Denys I. Bondar
Phys. Rev. Research 8, 023018 (2026) - Published 6 April, 2026
Yingyou Ma, Christopher Amey, Aparna Baskaran, and Michael F. Hagan
Phys. Rev. Research 8, 023019 (2026) - Published 7 April, 2026
Diego García, Sergio Arias, and Rosa López
Phys. Rev. Research 8, 023020 (2026) - Published 7 April, 2026
Aleksandr Leontev, Axel Rosenhahn, and Viatcheslav Freger
Phys. Rev. Research 8, 023021 (2026) - Published 7 April, 2026
Diego Díaz, Arivazhagan G. Balasubramanian, Kasra Amini, Xiaomei Li, Fredrik Lundell, Shervin Bagheri, and Outi Tammisola
Phys. Rev. Research 8, 023022 (2026) - Published 7 April, 2026
Elijah Pelofske, Marek M. Rams, Andreas Bärtschi, Piotr Czarnik, Paolo Braccia, Lukasz Cincio, and Stephan Eidenbenz
Phys. Rev. Research 8, 023023 (2026) - Published 7 April, 2026
Nathan A. McMahon, Mahum Pervez, and Christian Arenz
Phys. Rev. Research 8, 023024 (2026) - Published 7 April, 2026
Artemy Kolchinsky, Andreas Dechant, Kohei Yoshimura, and Sosuke Ito
Phys. Rev. Research 8, 023025 (2026) - Published 8 April, 2026
Tanjung Krisnanda, Fernando Valadares, Kyle Timothy Ng Chu, Pengtao Song, Adrian Copetudo, Clara Yun Fontaine, Lukáš Lachman, Radim Filip, and Yvonne Y. Gao
Phys. Rev. Research 8, 023026 (2026) - Published 8 April, 2026
Leonardo Demarchi
Phys. Rev. Research 8, 023027 (2026) - Published 8 April, 2026
Qingyu Li, Chiranjib Mukhopadhyay, Abolfazl Bayat, and Ali Habibnia
Phys. Rev. Research 8, 023028 (2026) - Published 8 April, 2026
Aiman Al-Eryani, Marcel Gievers, and Kilian Fraboulet
Phys. Rev. Research 8, 023029 (2026) - Published 8 April, 2026
Borja Aizpurua, Sukhbinder Singh, and Román Orús
Phys. Rev. Research 8, 023030 (2026) - Published 8 April, 2026
Vipul Rai and Moupriya Das
Phys. Rev. Research 8, 023031 (2026) - Published 8 April, 2026
Niklas Golchert, Eetu Pelimanni, Nils Kiefer, Lutz Marder, Catmarna Küstner-Wetekam, Christina Zindel, Yusaku Terao, Emilia Heikura, Madhusree Roy Chowdhury, Adrian Krone, Arne Schröder, Maria Novella Piancastelli, Tatiana Marchenko, Iyas Ismail, Oksana Travnikova, Ralph Püttner, Antti Kivimäki, Kirill Chernenko, Denis Céolin, Olle Björneholm, Marc Simon, Arno Ehresmann, Minna Patanen, and Andreas Hans
Phys. Rev. Research 8, 023032 (2026) - Published 9 April, 2026
YeongKyu Lee and Changbong Hyeon
Phys. Rev. Research 8, 023033 (2026) - Published 9 April, 2026
X. Ballu, Z. Dou, L. Bugaud, R. Delagrange, A. Bernard, Ratnadwip Singha, L. M. Schoop, R. J. Cava, R. Deblock, Sophie Guéron, H. Bouchiat, and M. Ferrier
Phys. Rev. Research 8, 023034 (2026) - Published 10 April, 2026
Gyu-Hyeok Lee, U-Shin Kim, and Yoon-Ho Kim
Phys. Rev. Research 8, 023035 (2026) - Published 10 April, 2026
Nilo Mata-Cervera, Anton N. Vetlugin, Cesare Soci, Miguel A. Porras, and Yijie Shen
Phys. Rev. Research 8, 023036 (2026) - Published 10 April, 2026
Eivind Kristen Osestad, Stefan Yoshi Buhmann, and Johannes Fiedler
Phys. Rev. Research 8, 023037 (2026) - Published 13 April, 2026
Mathieu Dedenon, Jorge Barbazán, Carlos Peréz-González, Danijela Matic Vignjevic, and Pierre Sens
Phys. Rev. Research 8, 023038 (2026) - Published 13 April, 2026
Ryotaro Fukuzumi, Kosei Hatakeyama, Daisuke Miki, and Kazuhiro Yamamoto
Phys. Rev. Research 8, 023039 (2026) - Published 13 April, 2026
Aleksandar Badza, Gary Froyland, Roshan J. Samuel, and Jörg Schumacher
Phys. Rev. Research 8, 023040 (2026) - Published 13 April, 2026
Luisa Tolle, Ameneh Sheikhan, Thierry Giamarchi, Corinna Kollath, and Catalin-Mihai Halati
Phys. Rev. Research 8, 023041 (2026) - Published 13 April, 2026
Tobias Dornheim, Alexander Benedix Robles, Paul Hamann, Thomas M. Chuna, Pontus Svensson, Sebastian Schwalbe, Zhandos A. Moldabekov, Panagiotis Tolias, and Jan Vorberger
Phys. Rev. Research 8, 023042 (2026) - Published 13 April, 2026
Teresa Dalle Nogare and Ben D. Fulcher
Phys. Rev. Research 8, 023043 (2026) - Published 14 April, 2026
Gian Marcello Andolina, Matteo Ceccanti, Bianca Turini, Riccardo Riolo, Marco Polini, Marco Schirò, and Frank H. L. Koppens
Phys. Rev. Research 8, 023044 (2026) - Published 14 April, 2026
Zaiyi Shen, Leilei Wang, Shishuang Zhang, Chenlu Li, Kaili Xie, Xu Zheng, and Juho S. Lintuvuori
Phys. Rev. Research 8, 023045 (2026) - Published 14 April, 2026
Da Gao, Huayang Sun, Rui Ma, and Alexander Mietke
Phys. Rev. Research 8, 023046 (2026) - Published 15 April, 2026
Peizeng Li, Xiaoxiao Long, Zijian Lyu, Haodong Liu, Yankun Dou, Ziheng Qin, Peipei Ge, and Yunquan Liu
Phys. Rev. Research 8, 023047 (2026) - Published 15 April, 2026
Chuan Yang, Yixuan Liu, Chao Feng, Juhao Wu, and Weiqing Zhang
Phys. Rev. Research 8, 023048 (2026) - Published 15 April, 2026
K. Yokoyama, J. S. Lord, H. Abe, and T. Ohshima
Phys. Rev. Research 8, 023049 (2026) - Published 15 April, 2026
Tobias Nadolny and Christoph Bruder
Phys. Rev. Research 8, 023050 (2026) - Published 15 April, 2026
Kasra Rajabzadeh Dizaji, Leeseok Kim, Milad Marvian, and Christian Arenz
Phys. Rev. Research 8, 023051 (2026) - Published 16 April, 2026
Yusuke Yanagisawa and Shin-ichi Sasa
Phys. Rev. Research 8, 023052 (2026) - Published 16 April, 2026
Swati Chaudhary, Carl P. Romao, and Dominik M. Juraschek
Phys. Rev. Research 8, 023053 (2026) - Published 16 April, 2026
Ioannis Tzifas, Kay-Obbe Voss, Christopher Schröck, Pascal Simon, Jiaxu Liang, Lkhamsuren Bayarjargal, Maik Lang, Reinhard Boehler, David Merges, Leon Kirsch, Emanuil Zeqo, Bjoern Winkler, Maria-Eugenia Toimil-Molares, and Christina Trautmann
Phys. Rev. Research 8, 023054 (2026) - Published 16 April, 2026
Chethan Sanjeevappa, Anirudh Chandrasekaran, and Joseph J. Betouras
Phys. Rev. Research 8, 023055 (2026) - Published 16 April, 2026
Alessandro Mirone, Mauro Rovezzi, Christoph J. Sahle, and Alessandro Longo
Phys. Rev. Research 8, 023056 (2026) - Published 16 April, 2026
Eli Chertkov, Andrew C. Potter, David Hayes, and Michael Foss-Feig
Phys. Rev. Research 8, 023057 (2026) - Published 16 April, 2026
Current quantum computers are noisy and require either scalable and costly error correction or nonscalable and cheap error detection to perform large-scale quantum simulations. Researchers present a scalable and cheap error detection framework that avoids postselection, which they use to simulate a nonequilibrium phase transition in an open quantum system on a trapped-ion quantum computer.
D. Biswas, J. K. Wood, N. Chakraborty, A. S. Kheifets, and A. Sandhu
Phys. Rev. Research 8, 023058 (2026) - Published 17 April, 2026
Zhou-Quan Wan, Xu-Dong Dai, and Guo-Yi Zhu
Phys. Rev. Research 8, 023059 (2026) - Published 17 April, 2026
Andrey Sokolov, Tadej Emersic, Paul Nealey, Juan de Pablo, and Alexey Snezhko
Phys. Rev. Research 8, 023060 (2026) - Published 20 April, 2026
Umesh Kumar, Rafał Rechciński, Tatiana de Picoli, Jukka Vayrynen, and Satoshi Okamoto
Phys. Rev. Research 8, 023061 (2026) - Published 20 April, 2026
Vladyslav Bohun, Illia Lukin, Mykola Luhanko, Georgios Korpas, Philippe J. S. De Brouwer, Mykola Maksymenko, and Maciej Koch-Janusz
Phys. Rev. Research 8, 023062 (2026) - Published 20 April, 2026
Mingyu Jeon, Jinuk Kim, and Kyungwon An
Phys. Rev. Research 8, 023063 (2026) - Published 20 April, 2026
Seiji Mizuno
Phys. Rev. Research 8, 023064 (2026) - Published 20 April, 2026
Heng-Yu Chen, Yasuaki Hikida, and Yasutaka Koga
Phys. Rev. Research 8, 023065 (2026) - Published 21 April, 2026
Sumit Mukherjee and Jonte R. Hance
Phys. Rev. Research 8, 023066 (2026) - Published 22 April, 2026
D. S. Grün, L. Bellinato Giacomelli, A. Tashchilina, R. Donofrio, F. Borchers, T. Bland, M. J. Mark, and F. Ferlaino
Phys. Rev. Research 8, 023067 (2026) - Published 22 April, 2026
Yulong Li, Peter Gumbsch, and Christian Greiner
Phys. Rev. Research 8, 023068 (2026) - Published 22 April, 2026
Rahul Sinha, Ankit Gupta, and P. S. Burada
Phys. Rev. Research 8, 023069 (2026) - Published 23 April, 2026
Prakash Sharma, Yang Peng, Donna N. Sheng, Hitesh J. Changlani, and Yao Wang
Phys. Rev. Research 8, 023070 (2026) - Published 23 April, 2026
Yi-Fan Qu, Pavel E. Dolgirev, Eugene Demler, and Tao Shi
Phys. Rev. Research 8, 023071 (2026) - Published 23 April, 2026
Chien-Ting Wu, Chih-En Hsu, Chih-Ying Huang, Yung-Ning Hsu, Che-Lun Lee, Ssu-Yen Huang, Chun-Wei Chen, Hung-Chung Hsueh, and Ming-Wen Chu
Phys. Rev. Research 8, 023072 (2026) - Published 24 April, 2026
Miguel Verde and Paloma A. Huidobro
Phys. Rev. Research 8, 023073 (2026) - Published 24 April, 2026
Hamidreza Ramezani
Phys. Rev. Research 8, 023074 (2026) - Published 24 April, 2026
Srilekha Gandhari and Michael J. Gullans
Phys. Rev. Research 8, 023075 (2026) - Published 24 April, 2026
Alexander Altland, Kun Woo Kim, and Tobias Micklitz
Phys. Rev. Research 8, 023076 (2026) - Published 27 April, 2026
Chiara Badiali, Rafael Almeida, Bernardo Malaca, Ricardo Fonseca, Thales Silva, and Jorge Vieira
Phys. Rev. Research 8, 023077 (2026) - Published 27 April, 2026
Alex J. Vernon and Konstantin Y. Bliokh
Phys. Rev. Research 8, 023078 (2026) - Published 27 April, 2026
Alexander B. Shick and Evgenia A. Tereshina-Chitrova
Phys. Rev. Research 8, 023079 (2026) - Published 27 April, 2026
Zsolt Lécz, Adam Hughes, Ahmed Ali Jasim Ajam, Jasmin Hills, Louis Forrester, Szilárd Majorosi, Daniel Papp, Tamás Lucza, Kristóf Nacsa, Kwinten Nelissen, Miklos Kiss, Mikhail Kalashnikov, Levente Lehotai, Viktor Pajer, Nóra Csernus-Lukács, János Bohus, Roland S. Nagymihály, Zulfikar Najmudin, Christos Kamperidis, and Nasr A. M. Hafz
Phys. Rev. Research 8, 023080 (2026) - Published 27 April, 2026
Alexandru-Lucian Nastasia, Mircea Dolineanu, and Dragoş-Victor Anghel
Phys. Rev. Research 8, 023081 (2026) - Published 28 April, 2026
Sharoon Austin, Dhruv Devulapalli, Khoi Hoang, Feng Zhou, Kartik Srinivasan, and Alexey V. Gorshkov
Phys. Rev. Research 8, 023082 (2026) - Published 28 April, 2026
Alexander J. H. Houston, David H. Brainard, Hannah E. Smithson, and Daniel J. Read
Phys. Rev. Research 8, 023083 (2026) - Published 28 April, 2026
A model captures how the retina avoids tuning out during a fixed gaze.
Yi-Te Huang, Hsiang-Wei Huang, Jhen-Dong Lin, Adam Miranowicz, Neill Lambert, Guang-Yin Chen, Franco Nori, and Yueh-Nan Chen
Phys. Rev. Research 8, 023084 (2026) - Published 29 April, 2026
Tomoyuki Yamaguchi
Phys. Rev. Research 8, 023085 (2026) - Published 29 April, 2026
Jinghong Xu, Liwei Jiang, Yuntian Zou, Xu Li, Haowen Tian, Wenjing Tian, Chi Fang, Yuanqiang Chen, and Jiali Liu
Phys. Rev. Research 8, 023086 (2026) - Published 29 April, 2026
Christopher J. Ho, Joy Dutta, Bijit Mukherjee, Jeremy M. Hutson, and Michael R. Tarbutt
Phys. Rev. Research 8, 023087 (2026) - Published 29 April, 2026
Nima Ghafari Cherati, Arsalan Hashemi, and Ádám Gali
Phys. Rev. Research 8, 023088 (2026) - Published 29 April, 2026
G. Brune, T. Tsagkir Dereli, L. Olschewski, N. F. Lopes Dias, M. Kipp, D. Biermann, and J. Debus
Phys. Rev. Research 8, 023089 (2026) - Published 29 April, 2026
M. Schubert, T. Bland, M. J. Mark, F. Ferlaino, and S. M. Reimann
Phys. Rev. Research 8, 023090 (2026) - Published 29 April, 2026
Jonas B. Profe, Jakša Vučičević, P. Peter Stavropoulos, Malte Rösner, Roser Valentí, and Lennart Klebl
Phys. Rev. Research 8, 023091 (2026) - Published 29 April, 2026
S. Atkar, Z. Tumbleson, S. A. Morley, N. Burdet, A. Islegen-Wojdyla, K. A. Goldberg, A. Scholl, S. A Montoya, Trinanjan Datta, and S. Roy
Phys. Rev. Research 8, 023092 (2026) - Published 29 April, 2026
Kilian Seibold, Greta Villa, Javier del Pino, and Oded Zilberberg
Phys. Rev. Research 8, 023093 (2026) - Published 29 April, 2026
Frederik Møller, Gabriel Fernández-Fernández, Thomas Schweigler, Paulin de Schoulepnikoff, Jörg Schmiedmayer, and Gorka Muñoz-Gil
Phys. Rev. Research 8, 023094 (2026) - Published 29 April, 2026
Gumaro Rendón
Phys. Rev. Research 8, 023095 (2026) - Published 30 April, 2026
Chang-geun Oh, Taisei Kitamura, Akito Daido, Jun-Won Rhim, and Youichi Yanase
Phys. Rev. Research 8, 023096 (2026) - Published 30 April, 2026
Frederik K. Marqversen, Gefen Baranes, Maxim Sirotin, and Johannes Borregaard
Phys. Rev. Research 8, 023097 (2026) - Published 30 April, 2026
Dario Cilluffo, Matthias Kost, Nicola Lorenzoni, and Martin B. Plenio
Phys. Rev. Research 8, 023098 (2026) - Published 30 April, 2026
Jorge M. Escobar-Agudelo, Rui Aquino, and Danilo B. Liarte
Phys. Rev. Research 8, 023099 (2026) - Published 30 April, 2026
Martin James, Francesco Viola, and Agnese Seminara
Phys. Rev. Research 8, 023100 (2026) - Published 30 April, 2026
Yuki Ohishi, Kazuki Oi, and Shimpei Endo
Phys. Rev. Research 8, 023101 (2026) - Published 30 April, 2026
William Skoglund, Elton Giacomelli, Yiqi Yang, Jens H. Bardarson, and Erik van Loon
Phys. Rev. Research 8, 023102 (2026) - Published 30 April, 2026
Baruch Meerson and Ohad Vilk
Phys. Rev. Research 8, 023103 (2026) - Published 30 April, 2026
Bo Leng and Vien Van
Phys. Rev. Research 8, 023104 (2026) - Published 1 May, 2026
Chao Wu, Yong Wu, Yu Hao Zhu, Ming Li, Jian Guo Wang, and Xiang Gao
Phys. Rev. Research 8, 023105 (2026) - Published 1 May, 2026
Charlotte Bäcker, Valentin Link, and Walter T. Strunz
Phys. Rev. Research 8, 023106 (2026) - Published 4 May, 2026
Liang Zhang, Zhiwei Fan, and Yiming Pan
Phys. Rev. Research 8, 023107 (2026) - Published 1 May, 2026
Domenico Giuliano, Reinhold Egger, Bidyut Dey, and Andrea Nava
Phys. Rev. Research 8, 023108 (2026) - Published 1 May, 2026
Kunal Vyas, Fengping Jin, Hans De Raedt, and Kristel Michielsen
Phys. Rev. Research 8, 023109 (2026) - Published 1 May, 2026
Bahaa Al Sayegh and Wissam Chemissany
Phys. Rev. Research 8, 023110 (2026) - Published 4 May, 2026
Robert Smit, Boleslaw Kozankiewicz, and Michel Orrit
Phys. Rev. Research 8, 023111 (2026) - Published 4 May, 2026
Lucas Winter, Pietro Brighi, and Andreas Nunnenkamp
Phys. Rev. Research 8, 023112 (2026) - Published 4 May, 2026
Yifan Liang, Xiaofan Wang, Tong Li, Jitao Sun, Zhuoyuan Liu, Jiayue Yang, Yong Yu, Qili Tian, Zhigang He, Hongfei Wang, Li Zeng, Hao Sun, Qinghao Zhu, Xuan Liu, Guorong Wu, Weiqing Zhang, Xueming Yang, Chuanxiang Tang, and Lixin Yan
Phys. Rev. Research 8, 023113 (2026) - Published 4 May, 2026
Jieyi Liu, Kaiwen Jiang, Jingfang Fan, and Yong Zou
Phys. Rev. Research 8, 023114 (2026) - Published 4 May, 2026
Meng-Zhi Wu
Phys. Rev. Research 8, 023115 (2026) - Published 4 May, 2026
Zejun Liu and Bryan K. Clark
Phys. Rev. Research 8, 023116 (2026) - Published 4 May, 2026
Marko Ristić, Richard O'Shaughnessy, Kate Wagner, Christopher J. Fontes, Chris L. Fryer, Oleg Korobkin, Matthew R. Mumpower, and Ryan T. Wollaeger
Phys. Rev. Research 8, 023117 (2026) - Published 4 May, 2026
Ignacio Salinas Valdivieso, Victor Gondret, Gerd Hartmann S., Mariano Uria, Pablo Solano, and Carla Hermann-Avigliano
Phys. Rev. Research 8, 023118 (2026) - Published 4 May, 2026
Shilong Zhang, Hengyuang Zhang, Zehao Dong, Jie Li, Qian Xiao, Mengwu Huo, Hsiao-Yu Huang, Di-Jing Huang, Yayu Wang, Yi Lu, Zhen Chen, Meng Wang, and Yingying Peng
Phys. Rev. Research 8, 023119 (2026) - Published 4 May, 2026
Riddhi Ghosh, Alexei Gilchrist, and Daniel Burgarth
Phys. Rev. Research 8, 023120 (2026) - Published 5 May, 2026
Dominic Ruckert, Stepan Kovarik, Richard Schlitz, Mirco Grellmann, Aishwarya Vishwakarma, Pietro Gambardella, and Sebastian Stepanow
Phys. Rev. Research 8, 023121 (2026) - Published 5 May, 2026
Gongyi Wang, Yu Zhang, and Zihan Huang
Phys. Rev. Research 8, 023122 (2026) - Published 5 May, 2026
Jaidev Goel, Pablo Moriano, Ramakrishnan Kannan, and Yulia R. Gel
Phys. Rev. Research 8, 023123 (2026) - Published 5 May, 2026
E. Shchukin and P. van Loock
Phys. Rev. Research 8, 023124 (2026) - Published 5 May, 2026
Jin-Feng Qin and Jing Liu
Phys. Rev. Research 8, 023125 (2026) - Published 5 May, 2026
Lillian I. Payne Torres, Irma Avdic, Anna O. Schouten, Olivia C. Wedig, Gregory S. Engel, and David A. Mazziotti
Phys. Rev. Research 8, 023126 (2026) - Published 5 May, 2026
C. J. Mowers, P. T. Malinowski, D.-G. Popescu, J. Dai, M. Tallarida, K. M. Shen, J. Fontcuberta, and M.-A. Husanu
Phys. Rev. Research 8, 023127 (2026) - Published 5 May, 2026
Yuxuan Zhang, Roeland Wiersema, Juan Carrasquilla, Lukasz Cincio, and Yong Baek Kim
Phys. Rev. Research 8, 023128 (2026) - Published 7 May, 2026
Merna Abumusabh, Giulio Dujany, Diego Guadagnoli, Axel Iohner, and Claudio Toni
Phys. Rev. Research 8, 023129 (2026) - Published 7 May, 2026
Partha Nandi, Tiasha Bhattacharyya, A. S. Majumdar, Graeme Pleasance, and Francesco Petruccione
Phys. Rev. Research 8, 023130 (2026) - Published 7 May, 2026
Andreas Seidel, Carola Zepter, Alexander Sävert, Stephan Kuschel, and Matt Zepf
Phys. Rev. Research 8, 023131 (2026) - Published 7 May, 2026
Lucas Rovige, Filipe D. Cruz, Timothy Van Hoomissen, Robert S. Dorst, Carmen G. Constantin, Stephen Vincena, Luis O. Silva, Christoph Niemann, and Derek B. Schaeffer
Phys. Rev. Research 8, 023132 (2026) - Published 8 May, 2026
Ming Chen, Muhammad Idrees, Kun Zhang, Zheng Sun, Hui-jun Li, and Alexey Kavokin
Phys. Rev. Research 8, 023133 (2026) - Published 8 May, 2026
Sean R. Garner, Nathan M. Myers, Meng Wang, Samuel Stein, Chenxu Liu, and Ang Li
Phys. Rev. Research 8, 023134 (2026) - Published 7 May, 2026
Tommer D. Keidar and Shlomi Reuveni
Phys. Rev. Research 8, 023135 (2026) - Published 7 May, 2026
Yi-Hung Liao (廖宜鴻), Jerard Vincent Ang, Pik-Yin Lai (黎璧賢), and Yonggun Jun (전용근)
Phys. Rev. Research 8, 023136 (2026) - Published 8 May, 2026
Marco Bernardi
Phys. Rev. Research 8, 023137 (2026) - Published 8 May, 2026
C. Romo-Luque, N. Salor-Iguiñiz, J. M. Benlloch-Rodríguez, R. Esteve, R. J. Aliaga, V. Álvarez, F. Ballester, R. Gadea, J. Generowicz, A. Laing, A. Martínez, F. Monrabal, M. Querol, M. Rappaport, J. Rodríguez, J. Rodríguez-Ponce, S. Teruel-Pardo, J. F. Toledo, R. Torres-Curado, P. Ferrario, V. Herrero, and J. J. Gómez-Cadenas
Phys. Rev. Research 8, 023138 (2026) - Published 11 May, 2026
Guan-Hao Peng, Wen-Teng Yang, Chun-Jui Huang, Jhen-Dong Lin, and Shun-Jen Cheng
Phys. Rev. Research 8, 023139 (2026) - Published 11 May, 2026
Fabian Pichler, Mohammad Hafezi, and Michael Knap
Phys. Rev. Research 8, 023140 (2026) - Published 11 May, 2026
Sofiene Jerbi, Joe Gibbs, Manuel S. Rudolph, Matthias C. Caro, Patrick J. Coles, Hsin-Yuan Huang, and Zoë Holmes
Phys. Rev. Research 8, 023141 (2026) - Published 11 May, 2026
Yang Yu, Lei Zhang, Emanuel Gull, Xiaodong Cao, and Xinyang Dong
Phys. Rev. Research 8, 023142 (2026) - Published 11 May, 2026
Arda Bulut, Yusuf Sariyar, Giuseppe Negro, and Livio Nicola Carenza
Phys. Rev. Research 8, 023143 (2026) - Published 11 May, 2026
Heidi Kivijärvi, Arto Viitanen, Timm Mörstedt, and Mikko Möttönen
Phys. Rev. Research 8, 023144 (2026) - Published 11 May, 2026
Daniel Schick, Tim Matthies, Thomas Mutschler, Levente Rózsa, and Ulrich Nowak
Phys. Rev. Research 8, 023145 (2026) - Published 11 May, 2026
N. Zhavoronkov, U. Bengs, and D. B. Milošević
Phys. Rev. Research 8, 023146 (2026) - Published 11 May, 2026
Asadullah Bhuiyan, Haining Pan, and Chao-Ming Jian
Phys. Rev. Research 8, 023147 (2026) - Published 11 May, 2026
Sreetama Das, Gian Luca Giorgi, and Roberta Zambrini
Phys. Rev. Research 8, 023148 (2026) - Published 11 May, 2026
Peng Ju, Kunhong Shen, Stefan Püschel, Yuanbin Jin, Hiroki Tanaka, and Tongcang Li
Phys. Rev. Research 8, 023149 (2026) - Published 11 May, 2026
Shuntaro Otake and Motoaki Bamba
Phys. Rev. Research 8, 023150 (2026) - Published 11 May, 2026
Abhishek Shukla, Boo Carmans, Michael Petrov, Daan Vrancken, and Milos Nesladek
Phys. Rev. Research 8, 023151 (2026) - Published 11 May, 2026
Anatoliy I. Lotkov, Denis V. Kurlov, Valerii K. Kozin, Jelena Klinovaja, and Daniel Loss
Phys. Rev. Research 8, 023152 (2026) - Published 11 May, 2026
Oskar Leibnitz, Peter Mlkvik, Nicola A. Spaldin, and Claude Ederer
Phys. Rev. Research 8, 023153 (2026) - Published 11 May, 2026
Sun Woo P. Kim, Curt von Keyserlingk, and Austen Lamacraft
Phys. Rev. Research 8, 023155 (2026) - Published 11 May, 2026
Kartik Chhajed and P. K. Mohanty
Phys. Rev. Research 8, 023156 (2026) - Published 11 May, 2026
Navdeep Rana and Ramin Golestanian
Phys. Rev. Research 8, 023157 (2026) - Published 11 May, 2026
Fucheng Guo, Frank Mueller, and Yuan Liu
Phys. Rev. Research 8, 023158 (2026) - Published 12 May, 2026
Sabina Drăgoi, Alberto Baiardi, and Daniel J. Egger
Phys. Rev. Research 8, 023159 (2026) - Published 12 May, 2026
Yuya Kawamata, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 8, 023161 (2026) - Published 13 May, 2026
Federico Astolfi, Sven Jandura, and Guido Pupillo
Phys. Rev. Research 8, 023162 (2026) - Published 14 May, 2026
F. Scali, M. Finazzi, F. Bottegoni, and C. Zucchetti
Phys. Rev. Research 8, 023163 (2026) - Published 14 May, 2026
Paulius Dolmantas, Chun-Fu Chang, Martin Sundermann, Andrea Marino, Andrea Amorese, Hlynur Gretarsson, Marcus Schmidt, Thomas Christoph Koethe, Maurits W. Haverkort, and Liu Hao Tjeng
Phys. Rev. Research 8, 023164 (2026) - Published 14 May, 2026
H. C. Costa, J. V. M. Silveira, B. R. R. Boaretto, C. Masoller, S. R. Lopes, and T. L. Prado
Phys. Rev. Research 8, 023165 (2026) - Published 14 May, 2026
Shuvadip Ghosh, Nikhil Gupt, and Arnab Ghosh
Phys. Rev. Research 8, 023166 (2026) - Published 14 May, 2026
Arpit Arora and Prineha Narang
Phys. Rev. Research 8, 023167 (2026) - Published 14 May, 2026
Chris N. Self, Sofyan Iblisdir, Gavin K. Brennen, and Konstantinos Meichanetzidis
Phys. Rev. Research 8, 023168 (2026) - Published 14 May, 2026
Xiao-Lin Zhao, Nie-Wei Wang, Han Zhang, Nuo Xu, Rui-Ning Wang, Jiang-Long Wang, and Xing-Qiang Shi
Phys. Rev. Research 8, 023169 (2026) - Published 15 May, 2026
Alexander J. Shook, Daksh Malhotra, Aymar Muhikira, Vaisakh Vadakkumbatt, and John P. Davis
Phys. Rev. Research 8, 023170 (2026) - Published 15 May, 2026
Seishiro Ono, Rintaro Masaoka, Haruki Watanabe, and Hoi Chun Po
Phys. Rev. Research 8, 023171 (2026) - Published 15 May, 2026
Dario Cilluffo, Luca Ferialdi, G. Massimo Palma, Giuseppe Calajò, and Francesco Ciccarello
Phys. Rev. Research 8, 023172 (2026) - Published 18 May, 2026
Hiroki Mori, Soma Miki, Kota Emoto, Ryo Ishikawa, Eiiti Tamura, Hikaru Nomura, Minori Goto, and Yoshishige Suzuki
Phys. Rev. Research 8, 023173 (2026) - Published 18 May, 2026
Lluís Barceló-Coblijn, Víctor M. Eguíluz, and Luís F. Seoane
Phys. Rev. Research 8, 023174 (2026) - Published 18 May, 2026
Namu Kroupa and Will Handley
Phys. Rev. Research 8, 023175 (2026) - Published 18 May, 2026
Liam O’Connor, Daniel Lecoanet, Geoffrey M. Vasil, Kyle C. Augustson, Florentin Daniel, Evan H. Anders, Keaton J. Burns, Jeffrey S. Oishi, and Benjamin P. Brown
Phys. Rev. Research 8, 023176 (2026) - Published 18 May, 2026
Landon D. Bevier and Justin M. Little
Phys. Rev. Research 8, 023177 (2026) - Published 18 May, 2026
Justin Lien, Hiroyasu Ando, Yong-Yub Kim, and Ingo Richter
Phys. Rev. Research 8, 023178 (2026) - Published 18 May, 2026
Michael W. Jack
Phys. Rev. Research 8, 023179 (2026) - Published 18 May, 2026
Zixuan Xiao, Kaiwen Yi, Zejia Lin, and Xiang Peng
Phys. Rev. Research 8, 023180 (2026) - Published 18 May, 2026
Seongwook Shin, Ryan Sweke, and Hyunseok Jeong
Phys. Rev. Research 8, 023181 (2026) - Published 19 May, 2026
Amin Hashemi, Vinzenz Zimmermann, Armando Perez-Leija, and Andrea Blanco-Redondo
Phys. Rev. Research 8, 023182 (2026) - Published 19 May, 2026
Elizabeth H. Krenkel, Makariy A. Tanatar, Romain Grasset, Marcin Kończykowski, Shuzhang Chen, Cedomir Petrovic, Alex Levchenko, and Ruslan Prozorov
Phys. Rev. Research 8, 023183 (2026) - Published 19 May, 2026
Yetmgeta Aklilu, Tiany Yang, Cody Covington, and Kálmán Varga
Phys. Rev. Research 8, 023184 (2026) - Published 19 May, 2026
Eric Chatterjee, Daniel Soh, and Matt Eichenfield
Phys. Rev. Research 8, 023185 (2026) - Published 19 May, 2026
Carles Roch i Carceller, Hanwool Lee, Jonatan Bohr Brask, Kieran Flatt, and Joonwoo Bae
Phys. Rev. Research 8, 023186 (2026) - Published 19 May, 2026
Jin-Tian Zhang, Shuang-Quan Ma, Jing-Yi-Ran Jin, Tao Liu, and Qing Ai
Phys. Rev. Research 8, 023187 (2026) - Published 19 May, 2026
Sean A. Adamson and Petros Wallden
Phys. Rev. Research 8, 023188 (2026) - Published 20 May, 2026
Hannah Riley, Emmanuel Lassalle, Diego Romero Abujetas, Adam Stokes, Ramon Paniagua-Dominguez, and Ahsan Nazir
Phys. Rev. Research 8, 023189 (2026) - Published 20 May, 2026
Koon Siang Gan, Vijay Pal Singh, Luigi Amico, and Rainer Dumke
Phys. Rev. Research 8, 023190 (2026) - Published 20 May, 2026
Ke Chen, Mingzheng Zhu, Haishan Song, Wei Xie, and Xiang-Yang Li
Phys. Rev. Research 8, 023191 (2026) - Published 20 May, 2026
Grzegorz Rajchel-Mieldzioć, Szymon Pliś, and Emil Zak
Phys. Rev. Research 8, 023192 (2026) - Published 20 May, 2026
Andrey O. Leonov and Takayuki Shigenaga
Phys. Rev. Research 8, 023193 (2026) - Published 21 May, 2026
Rabsan Galib Ahmed, Adithi Udupa, and Giulia Ferrini
Phys. Rev. Research 8, 023194 (2026) - Published 21 May, 2026
Andreu Riera-Campeny, Patrick Maurer, and Oriol Romero-Isart
Phys. Rev. Research 8, 023196 (2026) - Published 21 May, 2026
Anagha V K and Apoorva Nagar
Phys. Rev. Research 8, 023197 (2026) - Published 21 May, 2026
Jannik Ströhle and Nikolija Momčilović
Phys. Rev. Research 8, 023198 (2026) - Published 21 May, 2026
S. McKay, S. R. Parnell, R. M. Dalgliesh, N. V. Lavrik, I. I. Kravchenko, Q. Le Thien, D. V. Baxter, G. Ortiz, and R. Pynn
Phys. Rev. Research 8, 023199 (2026) - Published 21 May, 2026
Hartmut Backe, José Baruchel, Simon Bénichou, Rébecca Dowek, David Eon, Pierre Everaere, Lutz Kirste, Pascal Klag, Werner Lauth, Patrik Straňák, and Thu Nhi Tran Caliste
Phys. Rev. Research 8, 023200 (2026) - Published 22 May, 2026
Chusei Kiumi, Jirô Akahori, Takuya Watanabe, and Norio Konno
Phys. Rev. Research 8, 023201 (2026) - Published 22 May, 2026
F. P. Gustafsson et al. (AEḡIS Collaboration)
Phys. Rev. Research 8, 023202 (2026) - Published 22 May, 2026
Yuxuan Guo, Sheng Yang, and Xue-Jia Yu
Phys. Rev. Research 8, 023203 (2026) - Published 26 May, 2026
Buğra Tüzemen, Andrea Barresi, Gabriel Wlazłowski, Piotr Magierski, and Klejdja Xhani
Phys. Rev. Research 8, 023204 (2026) - Published 26 May, 2026
Yusuke Nabae, Hiroya Mamori, and Hiroshi Gotoda
Phys. Rev. Research 8, 023205 (2026) - Published 26 May, 2026
Zhong-Xia Shang, Zi-Han Chen, and Cai-Sheng Cheng
Phys. Rev. Research 8, 023206 (2026) - Published 26 May, 2026
Nhat A. Nghiem, Linh Nguyen, Tuan K. Do, Tzu-Chieh Wei, and Trung V. Phan
Phys. Rev. Research 8, 023207 (2026) - Published 26 May, 2026
Sina Zeytinoğlu
Phys. Rev. Research 8, 023208 (2026) - Published 26 May, 2026
Chloe Salhani, Kensaku Chida, Takase Shimizu, Toshiaki Hayashi, and Katsuhiko Nishiguchi
Phys. Rev. Research 8, 023209 (2026) - Published 26 May, 2026
Modhuchandra Laishram, Suresh Basnet, and Young Dae Yoon
Phys. Rev. Research 8, 023210 (2026) - Published 26 May, 2026
F. Žgalj, A. S. Jašarević, D. Habibović, and D. B. Milošević
Phys. Rev. Research 8, 023211 (2026) - Published 27 May, 2026
Tian-Yun Chen and Jin-Hui Wu
Phys. Rev. Research 8, 023212 (2026) - Published 27 May, 2026
Arohi Jain, Jiayang Yan, Jacob R. Pierce, Tanner T. Simpson, Mikhail Polyanskiy, William Li, Marcus Babzien, Mark Palmer, Michael Downer, Roman Samulyak, Chan Joshi, Warren B. Mori, John P. Palastro, and Navid Vafaei-Najafabadi
Phys. Rev. Research 8, 023213 (2026) - Published 27 May, 2026
Laura Sommerlad, Nikolay M. Novikovskiy, Florian Trinter, Dominik Stemer, Owen Dennis McGinnis, Andreas Pier, Niklas Melzer, Jan Kruse, Max Kircher, Leon Kaiser, Theresa Wenzel, Till Jahnke, Reinhard Dörner, Philipp V. Demekhin, and Markus S. Schöffler
Phys. Rev. Research 8, 023214 (2026) - Published 27 May, 2026
Yifei Guan, Pedram Hassanzadeh, Tapio Schneider, Oliver Dunbar, Daniel Zhengyu Huang, Jinlong Wu, and Ignacio Lopez-Gomez
Phys. Rev. Research 8, 023215 (2026) - Published 27 May, 2026
This work combines ensemble Kalman inversion with calibration, emulation, and sampling to estimate closure parameters and their uncertainties for large-eddy simulations of two-dimensional geophysical turbulence. Across several flow regimes, the optimized parameters remain nearly constant and agree with semianalytical predictions.
Yiyang Ye and Jie Lin
Phys. Rev. Research 8, 023216 (2026) - Published 28 May, 2026
Gerardo Campos-Villalobos, André F. V. Matias, Ethan I. L. Jull, Lisa Tran, and Marjolein Dijkstra
Phys. Rev. Research 8, 023217 (2026) - Published 28 May, 2026
Alexandra Jurgens and James P. Crutchfield
Phys. Rev. Research 8, 023218 (2026) - Published 28 May, 2026
D. Baillie
Phys. Rev. Research 8, 023219 (2026) - Published 28 May, 2026
Thomas J. Dinter, Reece Roberts, Thomas Volz, Mikolaj K. Schmidt, and Cyril Laplane
Phys. Rev. Research 8, 023220 (2026) - Published 28 May, 2026
G. Gandus, A. Jayaraj, D. Passerone, R. Stadler, M. Luisier, and A. Valli
Phys. Rev. Research 8, 023221 (2026) - Published 28 May, 2026
Neli Laštovičková Streshkova and Martin Kozák
Phys. Rev. Research 8, 023222 (2026) - Published 28 May, 2026
Laya Parkavousi and Suropriya Saha
Phys. Rev. Research 8, 023223 (2026) - Published 28 May, 2026
Qi Huang, Jack Murdoch Moore, Ting-Ting Gao, and Gang Yan
Phys. Rev. Research 8, 023224 (2026) - Published 29 May, 2026
Federico Escudero, Dong Wang, Pierre A. Pantaleón, Shengjun Yuan, Francisco Guinea, and Zhen Zhan
Phys. Rev. Research 8, 023225 (2026) - Published 29 May, 2026
Bo-Ye Sun, Baptiste Bermond, Lucila Peralta Gavensky, Marin Bukov, Zheng-Wei Zhou, and Nathan Goldman
Phys. Rev. Research 8, 023226 (2026) - Published 29 May, 2026
I. Komis, E. T. Kokkinakis, K. G. Makris, and E. N. Economou
Phys. Rev. Research 8, 023227 (2026) - Published 29 May, 2026
Aleix Bou-Comas, Carlos Ramos Marimón, Jan T. Schneider, Stefano Carignano, and Luca Tagliacozzo
Phys. Rev. Research 8, 023229 (2026) - Published 1 June, 2026
Cem Güney Torun, Joseph H. D. Munns, Franziska Marie Herrmann, Viviana Villafane, Kai Müller, Ulrich Kentsch, Shavkat Akhmadaliev, Anthony C. Withers, Andreas Thies, Wentao Zhang, Aleksei Tsarapkin, Katja Höflich, Tommaso Pregnolato, Gregor Pieplow, and Tim Schröder
Phys. Rev. Research 8, 023230 (2026) - Published 1 June, 2026
L. Boulton, C. A. Lindstrøm, J. Beinortaite, J. Björklund Svensson, J. M. Garland, P. González Caminal, B. Hidding, G. Loisch, F. Peña, K. Põder, S. Schröder, S. Wesch, M. Wing, J. C. Wood, J. Osterhoff, and R. D’Arcy
Phys. Rev. Research 8, 023231 (2026) - Published 1 June, 2026
Abhikbrata Sarkar and Daniel Loss
Phys. Rev. Research 8, 023232 (2026) - Published 1 June, 2026
Mancheon Han, Hyowon Park, and Sangkook Choi
Phys. Rev. Research 8, 023233 (2026) - Published 1 June, 2026
J. A. J. Wondergem, M. Mytiliniou, F. C. H. de Wit, T. G. A. Reuvers, D. Holcman, and D. Heinrich
Phys. Rev. Research 8, 023234 (2026) - Published 1 June, 2026
Arunkumar Bupathy, Darian Hall, Ivan I. Smalyukh, Gerardo Campos-Villalobos, Rodolfo Subert, and Marjolein Dijkstra
Phys. Rev. Research 8, 023235 (2026) - Published 1 June, 2026
Emanuel Schlake, Jan P. Hackstein, Roy Barzel, Eva Hackmann, Dennis Rätzel, and Claus Lämmerzahl
Phys. Rev. Research 8, 023236 (2026) - Published 1 June, 2026
Mark A. Kramer
Phys. Rev. Research 8, 023237 (2026) - Published 1 June, 2026
Isaac Layton and Harry J. D. Miller
Phys. Rev. Research 8, 023238 (2026) - Published 1 June, 2026
Xiaobai Ning, Henri Jaffrès, Weisheng Zhao, and Aurélien Manchon
Phys. Rev. Research 8, 023239 (2026) - Published 2 June, 2026
Itay Gomelski, Jonathan Elyovich, Ariel Kelman, Erez Zohar, and Patrick Emonts
Phys. Rev. Research 8, 023240 (2026) - Published 2 June, 2026
Dingwei Zhao, Abolfazl Bayat, and Victor Montenegro
Phys. Rev. Research 8, 023241 (2026) - Published 2 June, 2026
Claudio Iacovelli, Josep Cabedo, Leticia Tarruell, and Alessio Celi
Phys. Rev. Research 8, 023242 (2026) - Published 3 June, 2026
Ryosuke Yoshii and Rio Oto
Phys. Rev. Research 8, 023243 (2026) - Published 3 June, 2026
Jeff Maki, Lidia Stocker, and Oded Zilberberg
Phys. Rev. Research 8, 023244 (2026) - Published 3 June, 2026
Stefano Pisoni, Raghavendra D. Peddinti, Siddhartha E. Guzman, Egor Tiunov, and Leandro Aolita
Phys. Rev. Research 8, 023245 (2026) - Published 4 June, 2026
Junhwan Kwon and Yong-il Shin
Phys. Rev. Research 8, 023246 (2026) - Published 5 June, 2026
Jonas Jäger, Philipp Elsässer, and Elham Torabian
Phys. Rev. Research 8, 023247 (2026) - Published 5 June, 2026
Koushik Goswami, Hong-Yan Shih (施宏燕), Cheng-Hung Chang (張正宏), Hsuan-Yi Chen (陳宣毅), and Pik-Yin Lai (黎璧賢)
Phys. Rev. Research 8, 023248 (2026) - Published 5 June, 2026
Francesca Zanichelli, Davit Petrosyan, Hanchen Wang, Patrick Helbingk, Richard Schlitz, Pietro Gambardella, and William Legrand
Phys. Rev. Research 8, 023249 (2026) - Published 5 June, 2026
Jaume Llabrés, Raúl Toral, Maxi San Miguel, and Federico Vázquez
Phys. Rev. Research 8, 023250 (2026) - Published 5 June, 2026
Siamak Kheiri, Saeed Taghavi, Matjaž Perc, and Alireza Valizadeh
Phys. Rev. Research 8, 023251 (2026) - Published 5 June, 2026
Nico Schaffrath, Thevashangar Sathiyanesan, Tobias A. Kampmann, and Jan Kierfeld
Phys. Rev. Research 8, 023252 (2026) - Published 5 June, 2026
Jinghao Lyu, Kyle J. Ray, and James P. Crutchfield
Phys. Rev. Research 8, 023253 (2026) - Published 8 June, 2026
Tristan Nerson, Jakob Hüpfl, Clément Ferise, David Globosits, Marlene Hudler, Matthieu Malléjac, Stefan Rotter, and Romain Fleury
Phys. Rev. Research 8, 023254 (2026) - Published 5 June, 2026
Marcin Płodzień
Phys. Rev. Research 8, 023255 (2026) - Published 8 June, 2026
Oliver M. Crampton, Thomas Roger, Chithrabhanu Perumangatt, Ravinder Singh, Robert I. Woodward, Davide G. Marangon, Ross J. Donaldson, R. Mark Stevenson, and Andrew J. Shields
Phys. Rev. Research 8, 023256 (2026) - Published 8 June, 2026
Karen Nakanishi, Masaaki Kakoki, Kiyotaka Ohwada, Kenta Kuroda, Kazuki Sumida, Hitoshi Sato, Koji Miyamoto, Taichi Okuda, Shinji Isogami, Keisuke Masuda, Yuya Sakuraba, and Akio Kimura
Phys. Rev. Research 8, 023257 (2026) - Published 8 June, 2026
Varun Srivastava, Abhinash Kumar Roy, Soumik Mahanti, Jasleen Kaur, Salini Karuvade, and Alexei Gilchrist
Phys. Rev. Research 8, 023258 (2026) - Published 8 June, 2026
Qinshu Lyu and M. R. Tarbutt
Phys. Rev. Research 8, 023259 (2026) - Published 8 June, 2026
This work identifies the mechanisms responsible for trapping and cooling in a blue-detuned magneto-optical trap driven by a pair of closely spaced frequency components of opposite circular polarization. When the Zeeman splitting matches the frequency difference between the two components, there is a state that is dark to the beam propagating in one direction but not to the beam from the opposite direction, generating a radiation pressure force toward the field zero.
Kent Ueno and Alexandre Cooper
Phys. Rev. Research 8, 023260 (2026) - Published 8 June, 2026
Hao-Jie Zhang, Bo-Yuan Li, Xiang-Yan An, Rong Huang, Zheng-Ming Sheng, Feng Liu, and Min Chen
Phys. Rev. Research 8, 023261 (2026) - Published 8 June, 2026
E. Langmann and J. Lenells
Phys. Rev. Research 8, 023262 (2026) - Published 8 June, 2026
Kang Wang, Bing Liu, Quan Liu, Huaxia Deng, and Xinglong Gong
Phys. Rev. Research 8, 023263 (2026) - Published 8 June, 2026
Catherine Ji, Ravin Raj, Benjamin Eysenbach, and Gautam Reddy
Phys. Rev. Research 8, 023264 (2026) - Published 8 June, 2026
Xin Zhang, Chao-Hua Yu, Gong-De Guo, and Song Lin
Phys. Rev. Research 8, 023265 (2026) - Published 8 June, 2026
Songming Liu and Jiaxing Yuan
Phys. Rev. Research 8, 023266 (2026) - Published 9 June, 2026
E. Gkoudinakis, S. Li, and I. K. Kominis
Phys. Rev. Research 8, 023267 (2026) - Published 9 June, 2026
Keita Kanno, Masaya Kohda, Ryosuke Imai, Sho Koh, Kosuke Mitarai, Wataru Mizukami, and Yuya O. Nakagawa
Phys. Rev. Research 8, 023268 (2026) - Published 9 June, 2026
Yusuke Miyajima and Masahito Mochizuki
Phys. Rev. Research 8, 023269 (2026) - Published 9 June, 2026
Florian Koch, Yu-Min Hu, and Jan Carl Budich
Phys. Rev. Research 8, 023270 (2026) - Published 11 June, 2026
Mario Gonzalez, Karin Sim, and R. Chitra
Phys. Rev. Research 8, 023271 (2026) - Published 10 June, 2026
Abdul Kalam, Prasenjit Deb, Akitada Sakurai, B. K. Sahoo, V. S. Prasannaa, and B. P. Das
Phys. Rev. Research 8, 023272 (2026) - Published 11 June, 2026
Y.-S. Choi, Dirk Wulferding, Raju Kalaivanan, Rajesh Kumar Ulaganathan, Raman Sankar, and Kwang-Yong Choi
Phys. Rev. Research 8, 023273 (2026) - Published 10 June, 2026
Ronan Lahaye, Igor A. Andriyash, Julien Gautier, Olena Kononenko, Adrien Leblanc, Jean-Philippe Goddet, Amar Tafzi, and Cédric Thaury
Phys. Rev. Research 8, 023274 (2026) - Published 10 June, 2026
Christian S. Kern, Xiaosheng Yang, Giovanni Zamborlini, Simone Mearini, Matteo Jugovac, Vitaliy Feyer, Umberto De Giovannini, Angel Rubio, Serguei Soubatch, Michael G. Ramsey, F. Stefan Tautz, and Peter Puschnig
Phys. Rev. Research 8, 023275 (2026) - Published 11 June, 2026
Arnau Vivet and Alex Arenas
Phys. Rev. Research 8, 023276 (2026) - Published 11 June, 2026
Pablo Páez-Velasco, Niclas Schilling, Samuel O. Scalet, Frank Verstraete, and Ángela Capel
Phys. Rev. Research 8, 023277 (2026) - Published 12 June, 2026
J. Fournier, P.-O. Downey, O. Gingras, C.-D. Hébert, M. Charlebois, and A.-M. S. Tremblay
Phys. Rev. Research 8, 023278 (2026) - Published 10 June, 2026
Mattin Urbieta, Eduardo Ogando, Alberto Rivacoba, Javier Aizpurua, and Nerea Zabala
Phys. Rev. Research 8, 023279 (2026) - Published 11 June, 2026
Samuel L. Foley and Margaret E. Johnson
Phys. Rev. Research 8, 023280 (2026) - Published 11 June, 2026
Davide Badalotti, Carlo Baldassi, Marc Mézard, Mattia Scardecchia, and Riccardo Zecchina
Phys. Rev. Research 8, 023281 (2026) - Published 11 June, 2026
Anouar Moustaj, Yitao Sun, Tiago V. C. Antão, and Jose L. Lado
Phys. Rev. Research 8, 023282 (2026) - Published 11 June, 2026
Andrea Mazzino and Giuseppe Suaria
Phys. Rev. Research 8, 023283 (2026) - Published 11 June, 2026
Giulia Rubino, Časlav Brukner, and Gonzalo Manzano
Phys. Rev. Research 8, 023284 (2026) - Published 11 June, 2026
Gian Gentinetta, Friederike Metz, William Kirby, and Giuseppe Carleo
Phys. Rev. Research 8, 023285 (2026) - Published 11 June, 2026
W. C. Mei et al.
Phys. Rev. Research 8, 023286 (2026) - Published 12 June, 2026
R. A. Meijer, G. Lajoinie, B. Liu, S. Witte, and O. O. Versolato
Phys. Rev. Research 8, 023287 (2026) - Published 12 June, 2026
Peter Caradonna and Kenji Shimazoe
Phys. Rev. Research 8, 023288 (2026) - Published 12 June, 2026
Pranay Jaiswal, Ivar S. Haugerud, Hidde D. Vuijk, and Christoph A. Weber
Phys. Rev. Research 8, 023289 (2026) - Published 12 June, 2026
Morteza Moradi, Maryam Afsary, Piotr Mironowicz, Enky Oudot, and Magdalena Stobińska-Moretto
Phys. Rev. Research 8, 023290 (2026) - Published 12 June, 2026
Tomotaka Oroguchi, Rintaro Inoue, and Masaaki Sugiyama
Phys. Rev. Research 8, 023291 (2026) - Published 15 June, 2026
Yoh Maekawa, Ryuna Nagayama, Kohei Yoshimura, and Sosuke Ito
Phys. Rev. Research 8, 023292 (2026) - Published 15 June, 2026
Guillem Masdemont, Julien Legendre, and Georgia T. Papadakis
Phys. Rev. Research 8, 023293 (2026) - Published 15 June, 2026
Lucas Federspiel, Jorge Arrieta, Marco Polin, Françoise Argoul, and Antoine Allard
Phys. Rev. Research 8, 023294 (2026) - Published 15 June, 2026
Luis Octavio Castaños-Cervantes, Lorenzo M. Procopio, and Tim J. Bartley
Phys. Rev. Research 8, 023295 (2026) - Published 15 June, 2026
Lutz Hammer, Tilman Kißlinger, Margareta Wagner, Reinhard B. Neder, Michael Schmid, Ulrike Diebold, and M. Alexander Schneider
Phys. Rev. Research 8, 023296 (2026) - Published 15 June, 2026
Lena Scherthan, Juliusz A. Wolny, Isabelle Faus, Olaf Leupold, Kai S. Schulze, Sebastian Höfer, Robert Loetzsch, Berit Marx-Glowna, Christopher E. Anson, Annie K. Powell, Ingo Uschmann, Hans-Christian Wille, Gerhard G. Paulus, Volker Schünemann, and Ralf Röhlsberger
Phys. Rev. Research 8, 023297 (2026) - Published 15 June, 2026
Soumya S. Kumar, Javier del Pino, Letizia Catalini, Alexander Eichler, and Oded Zilberberg
Phys. Rev. Research 8, 023298 (2026) - Published 15 June, 2026
The dynamical phase transitions of a Duffing resonator subjected to a bichromatic drive across the slow- and fast-beating regimes are mapped. An analytical threshold to observe these transitions based on an effective nonlinear response theory is provided, explaining the mechanism behind these processes. Complementary analytical treatments for the slow and fast regimes are supplied.
M. Sumetsky
Phys. Rev. Research 8, 023299 (2026) - Published 15 June, 2026
Tomonori Tanaka and Yoshihiro Gohda
Phys. Rev. Research 8, 023300 (2026) - Published 15 June, 2026
Stefano Achilli, Damiano Marian, Mario Lodari, Luca Moreschini, Emiliano Bonera, Giordano Scappucci, Jacopo Pedrini, Michele Virgilio, and Fabio Pezzoli
Phys. Rev. Research 8, 023302 (2026) - Published 16 June, 2026
Yoshiki Hiruta, Kento Yasuda, and Kenta Ishimoto
Phys. Rev. Research 8, 023303 (2026) - Published 16 June, 2026
Philipp J. Vetter, Christoph Findler, Antonio Verdú, Matthias Kost, Rémi Blinder, Jens Fuhrmann, Christian Osterkamp, Johannes Lang, Martin B. Plenio, Javier Prior, and Fedor Jelezko
Phys. Rev. Research 8, 023304 (2026) - Published 16 June, 2026
Ohad Vilk
Phys. Rev. Research 8, 023305 (2026) - Published 16 June, 2026
Hajar Assil, Abderrahim El Allati, and Gian Luca Giorgi
Phys. Rev. Research 8, 023306 (2026) - Published 17 June, 2026
Sungjun Lee, Younghoon Lim, Jongyeol Kim, Jaeryeong Chang, and Jee Woo Park
Phys. Rev. Research 8, 023307 (2026) - Published 17 June, 2026
Rose Albu Mustaf, Sajilesh K. P., Sanu Mishra, Junze Deng, Yi Jiang, Kaja H. Hiorth, Eeli O. Lamponen, Martin Gutierrez-Amigo, Päivi Törmä, Miguel A. L. Marques, B. Andrei Bernevig, and Emilia Morosan
Phys. Rev. Research 8, 023308 (2026) - Published 17 June, 2026
Mamoun Hemmida, Santanu Pakhira, David C. Johnston, and Hans-Albrecht Krug von Nidda
Phys. Rev. Research 8, 023309 (2026) - Published 17 June, 2026
Martijn Dols, Mikhail Cherkasskii, Victor A. S. V. Bittencourt, Carlos Gonzalez-Ballestero, Durga B. R. Dasari, and Silvia Viola Kusminskiy
Phys. Rev. Research 8, 023310 (2026) - Published 17 June, 2026
Joseph Vovrosh, Sergi Julià-Farré, Wladislaw Krinitsin, Michael Kaicher, Fergus Hayes, Emmanuel Gottlob, Augustine Kshetrimayum, Kemal Bidzhiev, Simon B. Jäger, Markus Schmitt, Joseph Tindall, Constantin Dalyac, Tiago Mendes-Santos, and Alexandre Dauphin
Phys. Rev. Research 8, 023311 (2026) - Published 17 June, 2026
Devesh Vaish and Michael Potthoff
Phys. Rev. Research 8, 023312 (2026) - Published 17 June, 2026
Hannah Kleine-Pollmann, Guido Homann, and Ludwig Mathey
Phys. Rev. Research 8, 023313 (2026) - Published 17 June, 2026
Feihu Ke and Chung-Yee Kwok
Phys. Rev. Research 8, 023314 (2026) - Published 17 June, 2026
Jonas A. Krieger, Igor P. Rusinov, Sourabh Barua, Aris Chatzichristos, Jared Croese, Derek Fujimoto, Stefan Holenstein, Victoria L. Karner, Ryan M. L. McFadden, John O. Ticknor, W. Andrew MacFarlane, Robert F. Kiefl, Geetha Balakrishnan, Evgueni V. Chulkov, Stuart S. P. Parkin, and Zaher Salman
Phys. Rev. Research 8, 023316 (2026) - Published 18 June, 2026
Yang Zhang, Brandon K. Russell, Geoffrey Pomraning, Lan Gao, Xiaocan Li, Adam Stanier, William Daughton, Chuanfei Dong, Liang Wang, Peiyun Shi, Kian Orr, and Hantao Ji
Phys. Rev. Research 8, 023317 (2026) - Published 18 June, 2026
Daniel Miller, Kyano Levi, Lukas Postler, Alex Steiner, Lennart Bittel, Gregory A. L. White, Yifan Tang, Eric J. Kuehnke, Antonio A. Mele, Sumeet Khatri, Lorenzo Leone, Jose Carrasco, Christian D. Marciniak, Ivan Pogorelov, Milena Guevara-Bertsch, Robert Freund, Rainer Blatt, Philipp Schindler, Thomas Monz, Martin Ringbauer, and Jens Eisert
Phys. Rev. Research 8, 023318 (2026) - Published 18 June, 2026
This article shows that Rains’ quantum shadow enumerators, a powerful tool in quantum error correction, admit a direct physical interpretation in terms of outcome statistics of two-copy Bell measurements. This connection enables efficient learning protocols for these quantities and is demonstrated experimentally on a trapped-ion quantum device.
Alejandro S. Gómez and Javier del Pino
Phys. Rev. Research 8, 023319 (2026) - Published 22 June, 2026
Miguel F. Martínez, Lucien Jezequel, Jens H. Bardarson, Thomas Klein Kvorning, and Julia D. Hannukainen
Phys. Rev. Research 8, 023320 (2026) - Published 22 June, 2026
Shoki Sugimoto, Takahiro Sagawa, and Ryusuke Hamazaki
Phys. Rev. Research 8, 023321 (2026) - Published 22 June, 2026
Kazunori Takahashi, Christine Charles, Rod W. Boswell, and Antonella Caldarelli
Phys. Rev. Research 8, 023322 (2026) - Published 22 June, 2026
Giuseppe Buccoliero, Rachel Nickel, Roberto Sant, Marli dos Reis Cantarino, Andrei Rogalev, Nathan J. Yutronkie, Tristan Riccardi, Daniel A. Chaney, Kurt Kummer, Johann Coraux, and Nicholas B. Brookes
Phys. Rev. Research 8, 023323 (2026) - Published 22 June, 2026
Paul-Henry Glinel, Normand Beaudoin, and Alexandre Melanson
Phys. Rev. Research 8, 023324 (2026) - Published 22 June, 2026
Sabri Meyer, Francesco Scala, Francesco Tacchino, and Aurelien Lucchi
Phys. Rev. Research 8, 023325 (2026) - Published 22 June, 2026
Haoyu Liu, Hanxu Zhang, Xu Wang, and Jianmin Yuan
Phys. Rev. Research 8, 023326 (2026) - Published 22 June, 2026
Fabian Dawel, Lennart Pelzer, Kai Dietze, Johannes Kramer, Marek Hild, Steven A. King, Nicolas C. H. Spethmann, Joshua Klose, Kilian Stahl, Sören Dörscher, Erik Benkler, Christian Lisdat, Sergey G. Porsev, Marianna S. Safronova, and Piet O. Schmidt
Phys. Rev. Research 8, 023327 (2026) - Published 23 June, 2026
Michael P. Adams, Elizabeth M. Jefremovas, and Andreas Michels
Phys. Rev. Research 8, 023328 (2026) - Published 23 June, 2026
Einar Gabbassov
Phys. Rev. Research 8, 023329 (2026) - Published 23 June, 2026
Meshy Ochana and Ron Lifshitz
Phys. Rev. Research 8, 023330 (2026) - Published 24 June, 2026
Mikhail Mamaev, Jayameenakshi Venkatraman, Martin Koppenhöfer, Ania C. Bleszynski Jayich, and Aashish A. Clerk
Phys. Rev. Research 8, 023331 (2026) - Published 24 June, 2026
Karan K. H. Manjunatha, Joakim Vianney Ngamsa Tegnitsap, Manyu Zhao, Lucia Valentina Gambuzza, Yafang Dong, Wei Zhang, Pedro Antonio Valdes-Sosa, Stefano Boccaletti, Mattia Frasca, and Ludovico Minati
Phys. Rev. Research 8, 023332 (2026) - Published 24 June, 2026
Bomin Kim, Tumentsereg Ochirkhuyag, Dorj Odkhuu, and S. H. Rhim
Phys. Rev. Research 8, 023333 (2026) - Published 24 June, 2026
Xianhao Rao, Adil Yolbarsop, Hong Li, and Wandong Liu
Phys. Rev. Research 8, 023334 (2026) - Published 24 June, 2026
Chanin Kumpeerakij, Thiparat Chotibut, and Oleg Kogan
Phys. Rev. Research 8, 023335 (2026) - Published 26 June, 2026
Tim Pokart, Lukas König, Sebastian Diehl, and Jan Carl Budich
Phys. Rev. Research 8, 023336 (2026) - Published 25 June, 2026
L. Chambard, A. Durand, J. Voisin, M. Perdriat, V. Jacques, and G. Hétet
Phys. Rev. Research 8, 023337 (2026) - Published 25 June, 2026
Zecai Zhou, Hendrik Hessenkemper, Andrew D. Bragg, and Tian Ma
Phys. Rev. Research 8, 023338 (2026) - Published 25 June, 2026
Annyun Das and Kanu Sinha
Phys. Rev. Research 8, 023339 (2026) - Published 25 June, 2026
Muhammad Arsalan Ali Akbar, Bretislav Friedrich, and Sabre Kais
Phys. Rev. Research 8, 023340 (2026) - Published 25 June, 2026
Bo Liang, Chang Liu, Hanlin Song, Tianyu Zhao, Yuxiang Xu, Zihao Xiao, Manjia Liang, Minghui Du, Wei-Liang Qian, Li-e Qiang, Mingming Sun, Peng Xu, and Ziren Luo
Phys. Rev. Research 8, 023341 (2026) - Published 25 June, 2026
Yuji Takagi, Natsumi Iwata, Emmanuel d’Humieres, Takayoshi Sano, and Yasuhiko Sentoku
Phys. Rev. Research 8, 023342 (2026) - Published 25 June, 2026
Yingqiu Mao, Han-Yu Ren, Zi-Yi Liu, Yi-Zheng Zhen, Tao Rong, Tao Jiang, Zhuo Chen, Zhe-Heng Yuan, Wen-Hua Qin, Xiaoran Zhang, Xiaobing Liu, Ming Gong, Kae Nemoto, William J. Munro, and Johannes Majer
Phys. Rev. Research 8, 023343 (2026) - Published 25 June, 2026
Alexander E. Cohen, Samuel Degnan-Morgenstern, Simon Daubner, Jörn Dunkel, and Martin Z. Bazant
Phys. Rev. Research 8, 023344 (2026) - Published 25 June, 2026
Guangyi Huang, Wenhao He, Xian Li, and Changlin Zheng
Phys. Rev. Research 8, 023345 (2026) - Published 26 June, 2026
T. G. Blackburn
Phys. Rev. Research 8, 023346 (2026) - Published 26 June, 2026
Jaemin Kim, Seungchan Seo, Jiyoung Yun, Benjamin Lienhard, and Joonwoo Bae
Phys. Rev. Research 8, 023347 (2026) - Published 26 June, 2026
Ronja Strömsdörfer and Klaus Obermayer
Phys. Rev. Research 8, 023348 (2026) - Published 26 June, 2026
Dávid X. Horváth, Benjamin Doyon, and Paola Ruggiero
Phys. Rev. Research 8, 023350 (2026) - Published 26 June, 2026
Jason Hindes, Chinthan B. Prasad, Loy McGuire, and Ira B. Schwartz
Phys. Rev. Research 8, 023351 (2026) - Published 26 June, 2026
Mohamed Swailem and Alastair M. Rucklidge
Phys. Rev. Research 8, 023352 (2026) - Published 26 June, 2026
Mojdeh S. Najafabadi, Joel F. Corney, Luis L. Sánchez-Soto, and Gerd Leuchs
Phys. Rev. Research 8, 023353 (2026) - Published 29 June, 2026
Kaustav Mukherjee, Sarah Chehade, Lorenzo Versini, Karim K. Alaa El-Din, Florian Mintert, and Rick Mukherjee
Phys. Rev. Research 8, 023354 (2026) - Published 29 June, 2026
D. Diplaris, G. A. Bougas, P. G. Kevrekidis, C.-L. Hung, P. Schmelcher, and S. I. Mistakidis
Phys. Rev. Research 8, 023355 (2026) - Published 29 June, 2026
James Walkling, Antonio Štrkalj, and F. Nur Ünal
Phys. Rev. Research 8, 023356 (2026) - Published 29 June, 2026
Francesco Martinelli, Anouk Droux, and Claude Ederer
Phys. Rev. Research 8, 023357 (2026) - Published 29 June, 2026
Sumeet, M. Hörmann, and K. P. Schmidt
Phys. Rev. Research 8, 023358 (2026) - Published 30 June, 2026
N. Kolezakis, R. Pastore, F. Rusciano, V. Guida, P. L. Maffettone, and G. D'Avino
Phys. Rev. Research 8, 023359 (2026) - Published 30 June, 2026
Le Hong Hoàng To, Andrés M. Somoza, Shamashis Sengupta, Louis Dumoulin, Laurent Bergé, Stefanos Marnieros, Claire Akiko Marrache-Kikuchi, and Miguel Ortuño
Phys. Rev. Research 8, 023360 (2026) - Published 30 June, 2026
J. N. Graham, T. J. Hicken, Resham Babu Regmi, M. Janoschek, I. Mazin, H. Luetkens, N. J. Ghimire, and Z. Guguchia
Phys. Rev. Research 8, 023361 (2026) - Published 30 June, 2026
Peter James Nee, Adhrit Ravichandran, Scott E. Field, Tousif Islam, Harald P. Pfeiffer, Vijay Varma, Michael Boyle, Andrea Ceja, Noora Ghadiri, Lawrence E. Kidder, Prayush Kumar, Akash Maurya, Marlo Morales, Antoni Ramos-Buades, Abhishek Ravishankar, Katie Rink, Hannes R. Rüter, Mark A. Scheel, Md Arif Shaikh, and Daniel Tellez
Phys. Rev. Research 8, 023362 (2026) - Published 30 June, 2026
Fabian Jakubczyk, Julia M. Link, and Carsten Timm
Phys. Rev. Research 8, 023363 (2026) - Published 30 June, 2026
Katsuya Shimabukuro, Kosaku Horinaga, Kazumo Wakabayashi, Hikaru Emoto, Noriko Ueki, Ken-ichi Wakabayashi, and Noriyo Mitome
Phys. Rev. Research 8, 023364 (2026) - Published 30 June, 2026
Rinke J. Wijngaarden
Phys. Rev. Research 8, 028001 (2026) - Published 2 June, 2026
Christopher F. Chyba, Kevin P. Hand, and Thomas H. Chyba
Phys. Rev. Research 8, 028002 (2026) - Published 2 June, 2026
Junsen Wang, Xiangxiang Sun, and Wei Zheng
Phys. Rev. Research 8, 029001 (2026) - Published 22 May, 2026
P. Elli Stamatopoulou, Wenhua Zhao, Álvaro Rodríguez Echarri, N. Asger Mortensen, Kurt Busch, Christos Tserkezis, and Christian Wolff
Phys. Rev. Research 8, 029002 (2026) - Published 28 May, 2026