Nooshin M. Estakhri, Ada Warren, Sophia E. Economou, and Edwin Barnes
Phys. Rev. Research 6, 043029 (2024) - Published 11 October, 2024
Entangling operations (short and long range) in modular three-qubit semiconductor quantum dot spin qubit systems with long-range interactions mediated by superconducting resonators are examined. The effect of the spectator qubits in reducing the gate fidelities and the impact of charge noise are also analyzed.
Rufus Boyack, Luca Delacrétaz, Éric Dupuis, and William Witczak-Krempa
Phys. Rev. Research 6, 043093 (2024) - Published 4 November, 2024
An examination of how conformal field theories respond to the presence of a magnetic field demonstrates that these systems typically transition into gapped phases but can also host metallic or non-Fermi-liquid behavior. These results offer new insights into the possible phases of quantum critical states under magnetic fields; more technically, they also characterize the spectrum of large-flux background monopole operators in conformal field theories.
Liang Si, Eric Jacob, Wenfeng Wu, Andreas Hausoel, Juraj Krsnik, Paul Worm, Simone Di Cataldo, Oleg Janson, and Karsten Held
Phys. Rev. Research 6, 043104 (2024) - Published 5 November, 2024
Density-functional theory plus dynamical mean-field theory correctly predicted the Fermi surface and quasiparticle renormalization in infinite-layer nickelates. There is no Ni-3 Fermi surface and no pocket, justifying a minimal model with correlated Ni-3 orbital and weakly correlated pocket only.
Mehdi Arfaoui, Robson Ferreira, and Sihem Jaziri
Phys. Rev. Research 6, 043243 (2024) - Published 5 December, 2024
A detailed theoretical description of the high-energy states that form the escape continuum for photoejected electrons in a tr-ARPES experiment, paying particular attention to their momentum dispersions, time-reversal symmetries, and spin characteristics. The analysis of the various symmetries fulfilled by such unbound states reveals the existence of a momentum-valley locking for the unbound final electron states, sharing various features with the valley Hall effect.
Agniva Datta, Carsten Beta, and Robert Großmann
Phys. Rev. Research 6, 043281 (2024) - Published 16 December, 2024
Many living organisms, such as bacteria, cells, and sperm but also sheep and fish, intermittently switch between an active mode of locomotion, pauses, and turning maneuvers. A framework based on stochastic modeling and renewal theory enables deciphering the rules behind the seemingly random motility.
Yigui Zhong, Takeshi Suzuki, Hongxiong Liu, Kecheng Liu, Zhengwei Nie, Youguo Shi, Sheng Meng, Baiqing Lv, Hong Ding, Teruto Kanai, Jiro Itatani, Shik Shin, and Kozo Okazaki
Phys. Rev. Research 6, 043328 (2024) - Published 30 December, 2024
Time- and angle-resolved photoemission spectroscopy is used to explore the dynamic band structures in the kagome superconductor CsVSb. Laser excitation induces a rapid shift of the van Hove singularities toward the Fermi level, followed by decay accompanied by oscillations linked to a specific phonon mode. Remarkably, this phonon mode—typically observable only in the charge-density wave (CDW) phase—persists beyond the CDW transition, revealing the potential presence of fluctuating CDW. These findings highlight strong electron-phonon couplings in CsVSb and demonstrate optical control of van Hove singularities in this system.
D. E. Veres, M. Giovannozzi, and G. Franchetti
Phys. Rev. Research 6, L042018 (2024) - Published 21 October, 2024
Despite various loss-reduction techniques, slow extraction from circular particle accelerators inherently involves beam loss, posing risks to machine components and constraining the beam intensity for fixed-target experiments. By employing a simple nonlinear transverse motion model in a circular accelerator, it is shown that integrating particle trapping in resonance islands with planar channeling in a bent crystal could be a promising candidate for a low-loss or even a septumless slow-extraction method.
Alexander Altland, Joaquim Telles de Miranda, and Tobias Micklitz
Phys. Rev. Research 6, L042029 (2024) - Published 30 October, 2024
This article analyzes and solves a minimal model showcasing the dynamics of quantum thermalization in the case where two random subsystems mutually act as “bath” for each other.
Tali Khain, Michel Fruchart, and Vincenzo Vitelli
Phys. Rev. Research 6, L042039 (2024) - Published 7 November, 2024
The control of particle motion in a fluid, a crucial problem in applications ranging from cell manipulation to drug delivery, is typically achieved by acting directly on the particle. Here, it is shown that the orientation of sinking objects can be controlled by modulating the viscosity of an anisotropic fluid.
Qian-Ze Zhu, Chrisy Xiyu Du, Ella M. King, and Michael P. Brenner
Phys. Rev. Research 6, L042057 (2024) - Published 9 December, 2024
A two-stage proofreading mechanism is introduced for colloidal self-assembly with patchy particles, combining state-dependent local bond strengthening and a reverse error-correcting pathway. The scheme improves assembly yield and robustness against quenched disorder while broadening the optimal temperature range for high-yield assembly.
Chenwei Lv, Ren Zhang, and Qi Zhou
Phys. Rev. Research 6, L042001 (2024) - Published 1 October, 2024
The relationship between Krylov complexity and circuit complexity is established in systems with dynamical symmetries via a geometrical approach. This method unambiguously designates the distance between basis states in Krylov space and applies to both time-independent and time-dependent Liouvillian superoperators.
Jianmin Wang, Liang Dong, Xingchang Wang, Zihan Zhou, Jinshuai Huang, Ying Zuo, Georgios A. Siviloglou, and J. F. Chen
Phys. Rev. Research 6, L042002 (2024) - Published 2 October, 2024
Quantum storage has been realized in various physical platforms, such as cold atom ensembles, yet relatively high efficiency is still hampered by relatively short lifetimes. The AC Stark shift generates precisely controlled fictitious magnetic fields, which can compensate for the first and second lowest-order inhomogeneities, and thus efficiently extends the lifetime of quantum storage in atomic platforms.
Aurel Bulgac, Matthew Kafker, Ibrahim Abdurrahman, and Gabriel Wlazłowski
Phys. Rev. Research 6, L042003 (2024) - Published 3 October, 2024
The unitary Fermi gas is a pure quantum many-body system with no classical limit, relevant to the physics of neutron stars, nuclei, cold atoms and condensed matter systems, in which quantum turbulence and non-Markovian dynamics coexist and there is an unexpected slow rate of eigenstate thermalization.
Ruijin Liu, Tingting Shi, Matteo Zaccanti, and Xiaoling Cui
Phys. Rev. Research 6, L042004 (2024) - Published 4 October, 2024
The structural change of universal trimers and tetramers along the three- to two-dimensional crossover is explored, and these universal clusters are shown to be very robust and to exist in the two-dimensional limit even with a large effective range.
Martin Ibarias, José Sánchez-Dehesa, and Arkadii Krokhin
Phys. Rev. Research 6, L042005 (2024) - Published 4 October, 2024
Viscous friction is strongly enhanced near a solid wall where moving fluid sticks to the surface. Due to such an enhancement, a sound wave propagating through a “fiber” of solid rods embedded in a fluidic medium loses its energy much faster than in the same viscous fluid that is free from scatterers. As calculations and experiments show, the energy loss can be attributed to some effective viscosity that may exceed the fluid’s viscosity by 3–4 orders of magnitude, and even more when the “fiber” combines rods with different diameters.
D. Pizzirani, T. Ottenbros, M. van Rijssel, O. Zheliuk, Y. Kreminska, M. Rösner, J. F. Linnartz, A. de Visser, N. E. Hussey, J. Ye, S. Wiedmann, and M. R. van Delft
Phys. Rev. Research 6, L042006 (2024) - Published 7 October, 2024
The superconducting state in the transition-metal dichalcogenide 2-NbS is studied in bulk and thin flake samples; an enhanced Maki parameter is found in the flake, signifying a change of the relevant pair-breaking mechanism from orbital to paramagnetic pair breaking.
Peter Græns Larsen and Anne E. B. Nielsen
Phys. Rev. Research 6, L042007 (2024) - Published 7 October, 2024
A quantum phase transition is observed in a quantum many-body scar, which is a highly excited nonthermal energy eigenstate in an otherwise thermal system.
Marvin Lenk, Fei Gao, Johann Kroha, and Andriy H. Nevidomskyy
Phys. Rev. Research 6, L042008 (2024) - Published 8 October, 2024
When electrons interact strongly with one another in a metal, the electric current and thermal heat flow differently at low temperatures, prompting researchers to call them strange metals, which have been the subject of intensive research in the past decade. In this work, using a combination of first-principles and state-of-the-art many-electron calculations, the authors establish that the much discussed strange-metal behavior in PrVAl is the result of an unconventional screening of praseodymium orbital moments by conduction electrons.
Aileen A. T. Durst and Matthew T. Eiles
Phys. Rev. Research 6, L042009 (2024) - Published 8 October, 2024
The spectral response of a Rydberg impurity immersed in an ideal Bose-Einstein condensate is investigated, and how interaction range and bath density dictate the system’s behavior is demonstrated. The universal description of Bose polarons is extended to a wider class of interactions, showing the emergence of a generic Gaussian response at high density and fragmentation of molaron quasiparticles at low densities.
Hao Lyu, Yongping Zhang, and Thomas Busch
Phys. Rev. Research 6, L042010 (2024) - Published 9 October, 2024
Thouless pumping provides a robust way to transport gap solitons, which are highly sensitive to parameters and are hard to manipulate. In a two-component Bose gas loaded into optical superlattices, the transport properties of the two gap solitons strongly depend on the interspecies interactions.
Daniel Burgarth, Paolo Facchi, Hiromichi Nakazato, Saverio Pascazio, and Kazuya Yuasa
Phys. Rev. Research 6, L042011 (2024) - Published 10 October, 2024
Central charges arise in the study of symmetry groups and play an important role in high-energy and condensed-matter physics, providing a deep understanding of the underlying structure of physical theories. A simple quantum-optical experiment is proposed that allows the direct observation of a central charge.
Michalis Chatzittofi, Ramin Golestanian, and Jaime Agudo-Canalejo
Phys. Rev. Research 6, L042012 (2024) - Published 11 October, 2024
In many experimental situations, the observable of interest interacts with other processes, but the latter are not directly observable. It is shown that the thermodynamic uncertainty relation can be used to infer the presence of such hidden correlations.
Ghada H. Alharbi, Stephan Wong, Yongkang Gong, and Sang Soon Oh
Phys. Rev. Research 6, L042013 (2024) - Published 15 October, 2024
The bifurcation of edge modes, which leads to optical bistability in a Su-Schrieffer-Heeger lattice with Kerr nonlinearity, is theoretically demonstrated. How changes in the refractive index perturb the topological edge modes is highlighted. Furthermore, the emergence of periodic and chaotic oscillations due to the coupling between edge and bulk modes with opposite chiralities is revealed.
Luis Colmenarez, Ze-Min Huang, Sebastian Diehl, and Markus Müller
Phys. Rev. Research 6, L042014 (2024) - Published 15 October, 2024
Each quantum error correcting code has a theoretical upper limit in the level noise that can be tolerated, the so-called optimal threshold. A method for estimating such thresholds based on the mixed-state coherent information is presented. Because of the small finite-size effects observed and its versatility in tackling different error models, the method is presented as a practical tool for obtaining optimal thresholds from small instances of error correcting codes.
Leonard M. Verhoff, Mike N. Pionteck, Michael Rüsing, Holger Fritze, Lukas M. Eng, and Simone Sanna
Phys. Rev. Research 6, L042015 (2024) - Published 15 October, 2024
Density functional theory is used to model ferroelectric domain walls in lithium niobate, uncovering the mechanisms behind enhanced conductivity due to significant band bending at charged domain walls.
F. Claude, L. Lafforgue, J. J. A. Houwman, M. J. Mark, and F. Ferlaino
Phys. Rev. Research 6, L042016 (2024) - Published 18 October, 2024
Models of interacting spins are central to condensed matter physics, probing phenomena such as quantum magnetism and topological phases. This work introduces an all-optical method to control and prepare the spin composition of a dipolar erbium gas in just a few tens of microseconds and demonstrates the successful implementation of spin-selective light shifts via the suppression of spin-exchange collisions.
Vojko Matko, Ewa Gorecka, Damian Pociecha, Joanna Matraszek, and Nataša Vaupotič
Phys. Rev. Research 6, L042017 (2024) - Published 18 October, 2024
The results of dielectric spectroscopy measurements for ferroelectric nematics are explained by assuming a high relative permittivity of the phase, attributed to the easy reorientation of permanent dipoles. The capacitance of surface layers and the resistance of electrodes are shown to play a crucial role in the interpretation of dielectric spectroscopy measurements.
D. E. Veres, M. Giovannozzi, and G. Franchetti
Phys. Rev. Research 6, L042018 (2024) - Published 21 October, 2024
Despite various loss-reduction techniques, slow extraction from circular particle accelerators inherently involves beam loss, posing risks to machine components and constraining the beam intensity for fixed-target experiments. By employing a simple nonlinear transverse motion model in a circular accelerator, it is shown that integrating particle trapping in resonance islands with planar channeling in a bent crystal could be a promising candidate for a low-loss or even a septumless slow-extraction method.
Cong Liu, Zhi-Xi Wu, and Jian-Yue Guan
Phys. Rev. Research 6, L042019 (2024) - Published 22 October, 2024
Chaos can arise from disordered couplings among elements, which can be further used to enhance weak signals, especially near the edge of chaos.
Marco A. Galvani Cunha, John C. Crocker, and Andrea J. Liu
Phys. Rev. Research 6, L042020 (2024) - Published 22 October, 2024
Biopolymer networks that are rigid despite having low coordination numbers must maintain high prestress; they are also generically accompanied by enzymes that preferentially cut low-tension filaments. It is found that rigid, highly prestressed, low-coordination networks are ripped apart by random pruning of network edges but can withstand tension-inhibited pruning, explaining why such enzymes are important.
Xiang Li, J. Huang, and J. E. Thomas
Phys. Rev. Research 6, L042021 (2024) - Published 23 October, 2024
The universal hydrodynamic transport properties of a unitary Fermi gas are measured, and kinetic theory is used to model the hydrodynamic decay of spatially periodic density perturbations. The results yield the temperature-independent density shifts for the thermal conductivity and shear viscosity, relative to the high-temperature two-body limits, revealing remnants of low-temperature many-body physics that persist to high temperatures.
Martino Stefanini and Jamir Marino
Phys. Rev. Research 6, L042022 (2024) - Published 23 October, 2024
A non-Hermitian version of Anderson’s orthogonality catastrophe, in which an impurity causes a drastic reorganization of the state of a fermionic gas, is studied. It is found that the dynamics caused by an impurity with imaginary strength qualitatively depends on the density of the system and provides a simple and controllable example of breakdown of bosonization, with the latter being able to capture only the high-density regime.
Jukka P. Pekola and Bayan Karimi
Phys. Rev. Research 6, L042023 (2024) - Published 24 October, 2024
How an isolated quantum multilevel system is thermalized via three-wave mixing is theoretically discussed.
Yuliya Bilinskaya, Michael Hughes, and Paolo Molignini
Phys. Rev. Research 6, L042024 (2024) - Published 24 October, 2024
This article investigates the conditions under which multiband states can be realized in ultracold dipolar quantum simulators by mapping out parameter regimes such as potential depths, interaction strengths, and particle fillings. The study provides quantitative comparisons between continuum and lattice models, revealing distinct ground-state configurations and the effects of higher-band populations in dipolar systems.
Kahan Dare, Jannek J. Hansen, Iurie Coroli, Aisling Johnson, Markus Aspelmeyer, and Uroš Delić
Phys. Rev. Research 6, L042025 (2024) - Published 25 October, 2024
The motion of an optically trapped nanosphere interacts with an optical cavity mode through the coherent scattering of trapping light. This fundamentally linear optomechanical interaction induces ultrastrong coupling, leading to strong hybridization of the optical and mechanical degrees of freedom.
Xiaotian Zhang, Zhanhai Yu, Hongrui Zhang, Di Xiang, and Hao Zhang
Phys. Rev. Research 6, L042026 (2024) - Published 25 October, 2024
Inside an optical ring cavity, a “cavity dark mode” is produced through the strong interaction with an atom array, where the cavity standing-wave nodes dynamically lock to the atomic positions, shielding atoms from light. This enables efficient conversion between optical modes, which are protected from dissipation due to atomic scattering loss and analogous to electromagnetically induced transparency.
Christoffer Hindlycke and Jan-Åke Larsson
Phys. Rev. Research 6, L042027 (2024) - Published 28 October, 2024
In fault-tolerant quantum computing, the restrictions on available gate sets necessitate the efficient generation of arbitrary rotations (and therefore also gates); it is sufficient to be able to rotate a qubit around one axis, and three such rotations allow for implementing any qubit unitary. An algorithm for single-qubit rotations using the Clifford+Toffoli gate set is proposed, admitting an explicit polynomial-time constructible circuit. The algorithm succeeds with probability strictly greater than , can be rerun upon failure, has expected circuit depth strictly less than log() + 3, and expected Toffoli count strictly less than log().
Bojeong Seo, Mingchen Huang, Ziting Chen, Mithilesh K. Parit, Yifei He, Peng Chen, and Gyu-Boong Jo
Phys. Rev. Research 6, L042028 (2024) - Published 29 October, 2024
Superradiance in a dipolar Bose-Einstein condensate is investigated to explore the effect of direct interactions between emitters in a many-body system. Anisotropic dipole-dipole interactions between magnetic atoms break the mirror symmetry in the decay modes of superradiance.
Alexander Altland, Joaquim Telles de Miranda, and Tobias Micklitz
Phys. Rev. Research 6, L042029 (2024) - Published 30 October, 2024
This article analyzes and solves a minimal model showcasing the dynamics of quantum thermalization in the case where two random subsystems mutually act as “bath” for each other.
Gerald E. Fux, Emanuele Tirrito, Marcello Dalmonte, and Rosario Fazio
Phys. Rev. Research 6, L042030 (2024) - Published 30 October, 2024
For a quantum advantage over classical computing, both entanglement and nonstabilizerness are necessary. It is demonstrated that both can exhibit phase transitions in hybrid quantum circuits independently.
Ying Gao et al.
Phys. Rev. Research 6, L042031 (2024) - Published 31 October, 2024
Researchers have developed an all-optical technique that significantly enhances proton acceleration by creating temporary microstructured targets before a high-energy laser arrives. The performance improvement is attributed to the temporary oscillation cavity effect exhibited by the electron cavity realized in the microplasma structure.
A. Nakano, K. Uchida, Y. Tomioka, M. Takaya, Y. Okimoto, and K. Tanaka
Phys. Rev. Research 6, L042032 (2024) - Published 31 October, 2024
The strong coupling between ultrafast carrier dynamics and strongly correlated electrons is studied. The results show that the thermal disorder of charge order leads to the suppression of harmonic intensity.
Hui-Ke Jin and Johannes Knolle
Phys. Rev. Research 6, L042033 (2024) - Published 4 November, 2024
Frustrated magnets can have accidental ground-state degeneracies that may be lifted by various forms of disorder, for example, in the form of thermal or quantum fluctuations. This order by disorder paradigm is generalized to nonequilibrium Floquet systems.
Gavriel Lerner, Matan Even Tzur, Ofer Neufeld, Avner Fleischer, and Oren Cohen
Phys. Rev. Research 6, L042034 (2024) - Published 4 November, 2024
Parametric processes in nonlinear optics obey photonic conservation laws, including conservations of energy and parity, as well as linear, orbital, and spin momenta. Two more conservation laws are predicted and explored numerically.
Yuan Liu, Ho Yiu Chung, Emmanuel Zambrini Cruzeiro, Junior R. Gonzales-Ureta, Ravishankar Ramanathan, and Adán Cabello
Phys. Rev. Research 6, L042035 (2024) - Published 4 November, 2024
Some particularly interesting forms of quantum nonlocality have been given different names in different contexts. Here it is shown that under four different definitions hides the same “extreme” form of quantum nonlocality.
Jagannath Sutradhar, Jonathan Ruhman, and Avraham Klein
Phys. Rev. Research 6, L042036 (2024) - Published 4 November, 2024
The low-temperature behavior of a Yukawa-SYK model coupled to interorbital spin and charge fluctuations is studied. The phase diagram reveals spin-singlet, spin-triplet, and mixed paired states, as well as a stable non-Fermi liquid phase, depending on the relative coupling to the different fluctuations. Notably, the pairing states occur between orbitals in a way that has no BCS analog. This rich phase structure, along with the unusual interorbital pairing, offers insight into non-BCS superconductivity in strongly correlated materials.
Tara N. Tošić, Pascale P. Deen, Arkadiy Simonov, and Nicola A. Spaldin
Phys. Rev. Research 6, L042037 (2024) - Published 4 November, 2024
In frustrated magnetic systems, understanding the nature of short-range correlations is key to unraveling complex magnetic behavior. Directional diffuse scattering in the hexagonal multiferroic YMnO is rationalized using first-principles density-functional theory and spin-dynamics simulations. Rod-like diffuse scattering, observed over a broad temperature range, is identified as a signature of triangular geometric frustration. Additionally, associated distinct in-plane and out-of-plane spin excitations are predicted and visualized through magnetoelectric multipoles, offering deeper insights into magnetic correlations and phase transitions in magnetically frustrated compounds.
Xuegang Li et al.
Phys. Rev. Research 6, L042038 (2024) - Published 5 November, 2024
A programmable superconducting simulator is used to experimentally map out the topology-localization phase diagram of the 1D Su-Schrieffer-Heeger model with quasiperiodic disorder. Various trivial and topological phases with extended, critical, and localized bulk states are found.
Tali Khain, Michel Fruchart, and Vincenzo Vitelli
Phys. Rev. Research 6, L042039 (2024) - Published 7 November, 2024
The control of particle motion in a fluid, a crucial problem in applications ranging from cell manipulation to drug delivery, is typically achieved by acting directly on the particle. Here, it is shown that the orientation of sinking objects can be controlled by modulating the viscosity of an anisotropic fluid.
Lluís Arola-Fernández and Lucas Lacasa
Phys. Rev. Research 6, L042040 (2024) - Published 12 November, 2024
Artificial neural networks trained in isolated data are shown to be able to fully generalize to unseen data when the networks are coupled, even if no data is actually shared. This “more is different” collective learning phase is shown to emerge via a phase transition.
B. Hawashin, J. Sirker, and G. S. Uhrig
Phys. Rev. Research 6, L042041 (2024) - Published 12 November, 2024
How can the topological Chern numbers be defined when single-particle states hybridize with continua? An effective single-particle Hamiltonian yields the proper Chern number if the band does not overlap with the continuum, but it appears to lose its physical meaning in the case of overlaps even though it still allows one to determine a Chern number.
Johannes Hofmann and Habib Rostami
Phys. Rev. Research 6, L042042 (2024) - Published 14 November, 2024
A mechanism to generate transverse thermoelectric currents using light in time-reversal invariant topological Fermi liquids is proposed, and applications in topological insulator surfaces are discussed. It is shown that, for interaction-dominated Fermi liquids, these currents are sensitive to anomalously large electron lifetimes in a unique hydrodynamic regime, which offers a way to both detect and exploit these long-lived excitations. The findings suggest ultrafast optothermometry as a powerful tool to explore the interplay of topology and interactions in Fermi liquids.
L. Gavassino
Phys. Rev. Research 6, L042043 (2024) - Published 14 November, 2024
It is proven that the local thermalization timescale of many high-energy gases with realistic interactions is, strictly speaking, infinite. This is because of the existence of nonhydrodynamic excitations that relax to equilibrium slower than exponentially.
L. Negrojević, A. Comolli, Fabian Brau, and A. De Wit
Phys. Rev. Research 6, L042044 (2024) - Published 20 November, 2024
In the presence of a radial flow, a stationary autocatalytic front can be maintained indefinitely at a fixed radial distance from the inlet, determined by the flow rate. In addition, a second diffusion-advection front travels outward because of the differences in the initial concentrations of the reactants.
Yiming Wang, Chandan Setty, Shouvik Sur, Liyang Chen, Silke Paschen, Douglas Natelson, and Qimiao Si
Phys. Rev. Research 6, L042045 (2024) - Published 21 November, 2024
The Fano factor—the ratio of an electrical current’s shot noise to its average—is identified as a new universal ratio of a Fermi liquid regardless of the strength of the electron correlation, as long as quasiparticles exist. Accordingly, a reduced Fano factor is identified as a sharp diagnostic for a loss of quasiparticles in strange metals.
Haowei Li, Konghao Sun, and Wei Yi
Phys. Rev. Research 6, L042046 (2024) - Published 21 November, 2024
Quantum stochastic resonance is shown to arise in a driven-dissipative Rydberg-atom array. The resonance manifests itself in the counting statistics of the emergent collective jumps in a single quantum trajectory, where the pivotal role of many-body correlations is revealed through a cluster model
Yang Xu, Saumya Choudhary, and Robert W. Boyd
Phys. Rev. Research 6, L042047 (2024) - Published 22 November, 2024
By exploiting the connection between the stimulated and spontaneous emission, this research develops a way to efficiently measure the high-dimensional spatial mode entanglement with a pure classical method.
Kerman Gallego-Lizarribar, Sergi Julià-Farré, Maciej Lewenstein, Christof Weitenberg, Luca Barbiero, and Javier Argüello-Luengo
Phys. Rev. Research 6, L042048 (2024) - Published 22 November, 2024
A method is presented for detecting spontaneously symmetry-broken phases with spin-charge separation in 1D fermionic systems by analyzing statistical noise correlations after ballistic expansion with atoms. This approach distinguishes charge-density wave, bond-order wave, and antiferromagnetic phases without relying on local order parameters.
Shaoxiong Li and Hiroki Saito
Phys. Rev. Research 6, L042049 (2024) - Published 25 November, 2024
It is known that a self-bound droplet of a Bose-Einstein condensate can be stabilized by quantum fluctuations in which the spins are fixed in the same direction. Here, the spin degrees of freedom are taken into account, and a toroidal droplet containing a spin vortex is found to be the ground state.
Shreya Vardhan, Sašo Grozdanov, Samuel Leutheusser, and Hong Liu
Phys. Rev. Research 6, L042050 (2024) - Published 26 November, 2024
Using the techniques of effective field theory and higher-form symmetries, a comprehensive theory of magnetohydrodynamic transport applicable to magnetic diffusion in neutron stars is developed. This analysis not only reproduces known phenomena, such as Ohmic decay, ambipolar diffusion, and Hall drift, but also reveals new terms in the magnetic field evolution equations, which are expected to become important in the presence of strong magnetic fields.
Nadav Antman Ron, Maor Carmi, and Rivka Bekenstein
Phys. Rev. Research 6, L042051 (2024) - Published 26 November, 2024
High-fidelity entanglement generation protocols between atomic qubits in an atomic ring array based on collective atomic excitations and leveraging the symmetry properties of the ring structure are proposed. A fidelity analysis of the protocols provides practical experimental parameters for state-of-the-art setups.
T. M. Schuett and S. A. Henneberg
Phys. Rev. Research 6, L042052 (2024) - Published 2 December, 2024
Stellarators represent a promising approach to magnetic confinement fusion. This work explores a compact design for a stellarator using numerical optimization. The resulting plasma equilibria achieve sufficient particle confinement, a self-consistent plasma current, and enhanced magnetohydrodynamic stability.
Reyk Börner, Ryan Deeley, Raphael Römer, Tobias Grafke, Valerio Lucarini, and Ulrike Feudel
Phys. Rev. Research 6, L042053 (2024) - Published 2 December, 2024
How timescale separation can cause noise-induced transitions to bypass the saddle in metastable systems is clarified. How to predict these transition paths under weak yet finite noise, going beyond Freidlin-Wentzell theory, is shown.
Yi-Hong Chen, Bao-Zong Wang, Ting-Fung Jeffrey Poon, Xin-Chi Zhou, Zheng-Xin Liu, and Xiong-Jun Liu
Phys. Rev. Research 6, L042054 (2024) - Published 2 December, 2024
A proposal introduces a mechanism for achieving controllable exchange and pairing processes in a Rydberg atom array through laser-assisted dipole-dipole interactions. Furthermore, it suggests that the incorporation of van der Waals interactions could enable the realization of Kitaev quantum spin liquids.
Yohan Vianna de Almeida, Fernando Nicacio, and Marcelo F. Santos
Phys. Rev. Research 6, L042055 (2024) - Published 4 December, 2024
Departing from a general, but fixed, evolution to a certain target system, different partitions between system and environment can lead to different values for physical quantities. This is closely related to how energy and information flow between these two partitions, which acquire further physical meaning when observations are being performed over the environment. Engineering such observations thus leads to possible enhancements on practical protocols.
J. Hertkorn, P. Stürmer, K. Mukherjee, K. S. H. Ng, P. Uerlings, F. Hellstern, L. Lavoine, S. M. Reimann, T. Pfau, and R. Klemt
Phys. Rev. Research 6, L042056 (2024) - Published 5 December, 2024
Elementary excitations of a dipolar supersolid confined in a toroidal trap are theoretically studied. It is shown that toroidal supersolids feature a decoupled mode spectrum, allowing the identification of a Higgs amplitude branch and two distinct Goldstone sound branches. The analysis highlights the interplay between crystal compression and superfluid flow of these modes, and a scheme is proposed for a spectroscopy of supersolids accessible to state-of-the-art experiments.
Qian-Ze Zhu, Chrisy Xiyu Du, Ella M. King, and Michael P. Brenner
Phys. Rev. Research 6, L042057 (2024) - Published 9 December, 2024
A two-stage proofreading mechanism is introduced for colloidal self-assembly with patchy particles, combining state-dependent local bond strengthening and a reverse error-correcting pathway. The scheme improves assembly yield and robustness against quenched disorder while broadening the optimal temperature range for high-yield assembly.
Hiroki Tsusaka, Ikki Morichika, and Satoshi Ashihara
Phys. Rev. Research 6, L042058 (2024) - Published 9 December, 2024
Midinfrared pulses align CO molecules at high-lying vibrational states via coherent multistep rovibrational processes. This achievement paves the way toward mode-selective stereochemistry at the electronic ground state.
Tae-Ho Park and Han-Yong Choi
Phys. Rev. Research 6, L042059 (2024) - Published 9 December, 2024
The evolution of the collective mode in the superconducting state within the Holstein model is revealed through phonon spectra across the BCS-BEC crossover, driven by variations in electron-phonon coupling. In the BCS regime, the peak position of the collective mode emerges near twice the pairing gap and shifts upward with increasing coupling, while in the BEC regime, it decreases, reflecting the reduction in superfluid stiffness. In the crossover region, the mode aligns with the soft phonon of the normal state and diminishes with stronger coupling.
Anton Simen, Carlos Flores-Garrigos, Narendra N. Hegade, Iraitz Montalban, Yolanda Vives-Gilabert, Eric Michon, Qi Zhang, Enrique Solano, and José D. Martín-Guerrero
Phys. Rev. Research 6, L042060 (2024) - Published 11 December, 2024
An approach to image classification by combining digital-analog quantum kernels with convolutional neural networks is presented. This hybrid model leverages quantum entanglement dynamics to enhance feature detection in medical images, achieving comparable or superior performance to classical counterparts with significantly fewer parameters. Applications include breast cancer and pneumonia diagnosis using realistic medical datasets.
Clément Moreau, Benjamin J. Walker, Rebecca N. Poon, Daniel Soto, Daniel I. Goldman, Eamonn A. Gaffney, and Kirsty Y. Wan
Phys. Rev. Research 6, L042061 (2024) - Published 12 December, 2024
Flexible, active filaments beating in a viscous fluid sustain a variety of waveforms. Complex actuation mechanisms are usually necessary to produce large-amplitude bending waves of the kind observed in cilia and eukaryotic flagella. Yet basal actuation becomes a viable mechanism when a curvature-dependent stiffness is introduced, as demonstrated by theory, numerics, and a simple robotic model.
Yasushi Yoneta
Phys. Rev. Research 6, L042062 (2024) - Published 13 December, 2024
Thermal pure states for systems with antiunitary symmetries, such as time-reversal or complex-conjugate symmetry, are constructed in a way that allows their representation as tensor network states. This approach makes it possible to handle much larger systems than conventional thermal pure state methods.
Guo-Yi Zhu, Nathanan Tantivasadakarn, and Simon Trebst
Phys. Rev. Research 6, L042063 (2024) - Published 13 December, 2024
A ball of interacting Majorana liquid is found inside a highly symmetric phase diagram of quantum entangled states induced only by random measurements. This liquid phase is sandwiched by topological toric and color codes and separated by a perfect sphere of quantum Lifshitz transitions.
Davis Crater, Anya C. Lätti, Michael Saccone, Kevin Hofhuis, Duncan Miertschin, Balaram Regmi, Barat Achinuq, Armin Kleibert, Charlotte F. Petersen, and Alan Farhan
Phys. Rev. Research 6, L042064 (2024) - Published 16 December, 2024
The stretched pentagonal lattice presents an alternative route toward vertex frustration, relying on the interplay between three-nanomagnet vertices and devoid of any four-nanomagnet vertices, which seems, so far, to be a critical component in vertex-frustrated artificial spin-ice systems.
Anna Gallo, Diego Garlaschelli, and Tiziano Squartini
Phys. Rev. Research 6, L042065 (2024) - Published 19 December, 2024
Recasting the idea of balance within a statistical framework enables accounting for the presence of noise affecting empirical link signs. This paves the way to nonambiguously assess whether any real-world signed graph is traditionally or relaxedly balanced. Within such a framework, the standard notion of frustration is replaced by a fuzzy one, interpreted as proxying the distance of a given configuration from the closest (either traditionally or relaxedly) balanced one.
Dean Johnstone, Shanya Mishra, Zhaoxuan Zhu, Hepeng Yao, and Laurent Sanchez-Palencia
Phys. Rev. Research 6, L042066 (2024) - Published 23 December, 2024
Quantum phase diagrams of bosonic matter in twisted potentials are theoretically studied. It is shown that fine tuning the twist angle may profoundly alter the physics of strongly correlated bosons and open weak superfluid lobes, characterized by low superfluid fraction and strong instability versus thermal fluctuations. The analysis highlights the role of enhanced unit cells in moiré patterns.
Federico Centrone and Manuel Gessner
Phys. Rev. Research 6, L042067 (2024) - Published 24 December, 2024
This study demonstrates that quantum steering enables the apparent violation of quantum speed limits by conditioning the evolution of a system on the measurement outcomes of a distant observer. The results provide insights into how quantum correlations influence the dynamical properties of quantum states and observables.
Kazumasa Hattori, Takayuki Ishitobi, and Hirokazu Tsunetsugu
Phys. Rev. Research 6, L042068 (2024) - Published 26 December, 2024
Unique cubic couplings and anisotropic interactions drive orbital orders into various triple-𝙦 states on the triangular lattice. Numerical analysis has revealed that incommensurate triple-𝙦 orbital orders produce orbital moiré patterns. These findings open up new opportunities for exploring orbital-active material search and moiré systems.
Xing-Long Zhu, Min Chen, Wei-Min Wang, and Zheng-Ming Sheng
Phys. Rev. Research 6, L042069 (2024) - Published 27 December, 2024
Highly polarized dense electron beams could be generated via direct electron-beam-solid interactions without invoking intense lasers.
Yakov Solomons, Inbar Shani, Ofer Firstenberg, Nir Davidson, and Ephraim Shahmoon
Phys. Rev. Research 6, L042070 (2024) - Published 30 December, 2024
A study shows how to efficiently couple atomic tweezer arrays to light, with applications in quantum information and networks. The scheme relies on a combination of reduced losses with enhanced coupling; the former being achieved by identifying and avoiding lossy diffraction resonances, while the latter is obtained by exploiting the coupling to a moderate-finesse cavity.
Martí Planasdemunt-Hospital, Jordi Pera, and Jordi Boronat
Phys. Rev. Research 6, L042071 (2024) - Published 30 December, 2024
When the interaction between Bose particles increases, effects that go beyond the universal regime in terms of the -wave scattering length emerge. This theoretical work quantifies the size and amount of corrections beyond that regime.
J. Ng, J. Yoo, L.-J. Chen, N. Bessho, and H. Ji
Phys. Rev. Research 6, L042072 (2024) - Published 30 December, 2024
Simulation studies of magnetic reconnection in the kinetic regime often use reduced parameters due to computational constraints. This work shows that the amplitude of lower-hybrid drift waves compared to the reconnection electric field, and their contribution to momentum transport, are controlled by these parameters.
Tan-Ji Zhou, Yu-Han Ma, and C. P. Sun
Phys. Rev. Research 6, 043001 (2024) - Published 1 October, 2024
Tenzin Rabga, Yangheon Lee, and Y. Shin
Phys. Rev. Research 6, 043002 (2024) - Published 1 October, 2024
Meng Lu, Xuerui Mao, Luca Brandt, and Jian Deng
Phys. Rev. Research 6, 043003 (2024) - Published 2 October, 2024
Lara Stroh, James T. Peat, Mats Kroneberg, Ittoop V. Puthoor, and Erika Andersson
Phys. Rev. Research 6, 043004 (2024) - Published 2 October, 2024
Graham G. Brown, Álvaro Jiménez-Galán, Rui E. F. Silva, and Misha Ivanov
Phys. Rev. Research 6, 043005 (2024) - Published 2 October, 2024
Yaïr Hein and Farshid Jafarpour
Phys. Rev. Research 6, 043006 (2024) - Published 2 October, 2024
Yaodong Li, C. W. von Keyserlingk, Guanyu Zhu, and Tomas Jochym-O'Connor
Phys. Rev. Research 6, 043007 (2024) - Published 2 October, 2024
Tomonori Shirakawa, Hiroshi Ueda, and Seiji Yunoki
Phys. Rev. Research 6, 043008 (2024) - Published 3 October, 2024
I. A. Aleksandrov, A. Kudlis, and A. I. Klochai
Phys. Rev. Research 6, 043009 (2024) - Published 3 October, 2024
A. Pandey, R. Vexiau, L. G. Marcassa, O. Dulieu, and N. Bouloufa-Maafa
Phys. Rev. Research 6, 043010 (2024) - Published 4 October, 2024
A. Roll, V. Balédent, J. Robert, J. Ollivier, C. Decorse, S. Guitteny, I. Mirebeau, and S. Petit
Phys. Rev. Research 6, 043011 (2024) - Published 4 October, 2024
Vincent Dumont, Markus Bestler, Letizia Catalini, Gabriel Margiani, Oded Zilberberg, and Alexander Eichler
Phys. Rev. Research 6, 043012 (2024) - Published 4 October, 2024
Toni Annala, Tommi Mikkonen, and Mikko Möttönen
Phys. Rev. Research 6, 043013 (2024) - Published 4 October, 2024
Sergio A. Ortega and Miguel A. Martin-Delgado
Phys. Rev. Research 6, 043014 (2024) - Published 4 October, 2024
Purba Chatterjee, Sean Fancher, and Eleni Katifori
Phys. Rev. Research 6, 043015 (2024) - Published 4 October, 2024
J. van de Kraats, D. J. M. Ahmed-Braun, V. E. Colussi, and S. J. J. M. F. Kokkelmans
Phys. Rev. Research 6, 043016 (2024) - Published 4 October, 2024
Pol Alsina-Bolívar, A. Biteri-Uribarren, C. Munuera-Javaloy, and J. Casanova
Phys. Rev. Research 6, 043017 (2024) - Published 4 October, 2024
Takuya Okuda, Aswin Parayil Mana, and Hiroki Sukeno
Phys. Rev. Research 6, 043018 (2024) - Published 4 October, 2024
Sang-Eun Lee, Yoav William Windsor, Daniela Zahn, Alexej Kraiker, Kurt Kummer, Kristin Kliemt, Cornelius Krellner, Christian Schüßler-Langeheine, Niko Pontius, Urs Staub, Denis V. Vyalikh, Arthur Ernst, and Laurenz Rettig
Phys. Rev. Research 6, 043019 (2024) - Published 4 October, 2024
Mauro D'Arcangelo, Louis-Paul Henry, Loïc Henriet, Daniele Loco, Nicolaï Gouraud, Stanislas Angebault, Jules Sueiro, Jérôme Forêt, Pierre Monmarché, and Jean-Philip Piquemal
Phys. Rev. Research 6, 043020 (2024) - Published 4 October, 2024
Jakob Günther, Alberto Baiardi, Markus Reiher, and Matthias Christandl
Phys. Rev. Research 6, 043021 (2024) - Published 7 October, 2024
S. Alex Rautu, Alexandra Zidovska, and Michael J. Shelley
Phys. Rev. Research 6, 043022 (2024) - Published 7 October, 2024
Zi-Jian Li, Gabriel Cardoso, Emil J. Bergholtz, and Qing-Dong Jiang
Phys. Rev. Research 6, 043023 (2024) - Published 8 October, 2024
R. Leenen, D. Aoki, G. Knebel, A. Pourret, and A. McCollam
Phys. Rev. Research 6, 043024 (2024) - Published 8 October, 2024
Francesco Perciavalle, Davide Rossini, Juan Polo, Oliver Morsch, and Luigi Amico
Phys. Rev. Research 6, 043025 (2024) - Published 9 October, 2024
Aleksandar Razpopov and Roser Valentí
Phys. Rev. Research 6, 043026 (2024) - Published 9 October, 2024
Oded Agam and Erez Braun
Phys. Rev. Research 6, 043027 (2024) - Published 10 October, 2024
Zhelun Li, Lento Nagano, and Koji Terashi
Phys. Rev. Research 6, 043028 (2024) - Published 10 October, 2024
Nooshin M. Estakhri, Ada Warren, Sophia E. Economou, and Edwin Barnes
Phys. Rev. Research 6, 043029 (2024) - Published 11 October, 2024
Entangling operations (short and long range) in modular three-qubit semiconductor quantum dot spin qubit systems with long-range interactions mediated by superconducting resonators are examined. The effect of the spectator qubits in reducing the gate fidelities and the impact of charge noise are also analyzed.
Sirine Amiri, Yirui Zhang, Andonis Gerardos, Cécile Sykes, and Pierre Ronceray
Phys. Rev. Research 6, 043030 (2024) - Published 11 October, 2024
Yuta Mizuno and Tamiki Komatsuzaki
Phys. Rev. Research 6, 043031 (2024) - Published 11 October, 2024
Peng Guo, Vladimir Gasparian, Antonio Pérez-Garrido, and Esther Jódar
Phys. Rev. Research 6, 043032 (2024) - Published 11 October, 2024
Eitan Kazakevich, Hadar Aharon, and Ofer Kfir
Phys. Rev. Research 6, 043033 (2024) - Published 15 October, 2024
Debjyoti Biswas, Gaurav M. Vaidya, and Prabha Mandayam
Phys. Rev. Research 6, 043034 (2024) - Published 15 October, 2024
Mingjie Li and S. A. R. Horsley
Phys. Rev. Research 6, 043035 (2024) - Published 15 October, 2024
Amelie Langer, Abhinav Sharma, Ralf Metzler, and Erik Kalz
Phys. Rev. Research 6, 043036 (2024) - Published 15 October, 2024
Thomas Gauthier, Nicolas Godin, Gaël Privault, Roman Bertoni, Etienne Janod, Danylo Babich, Benoit Corraze, Julien Tranchant, and Laurent Cario
Phys. Rev. Research 6, 043037 (2024) - Published 15 October, 2024
A. Delattre, I. Golokolenov, R. Pedurand, X. Zhou, A. Fefferman, and E. Collin
Phys. Rev. Research 6, 043038 (2024) - Published 15 October, 2024
Vishal P. Patil, Žiga Kos, and Jörn Dunkel
Phys. Rev. Research 6, 043039 (2024) - Published 16 October, 2024
Milan Rakic, Andrew F. Ho, and Derek K. K. Lee
Phys. Rev. Research 6, 043040 (2024) - Published 16 October, 2024
Weishun Zhong, Xun Gao, Susanne F. Yelin, and Khadijeh Najafi
Phys. Rev. Research 6, 043041 (2024) - Published 16 October, 2024
Tran Duong Anh-Tai, Thomás Fogarty, Sergi de María-García, Thomas Busch, and Miguel A. García-March
Phys. Rev. Research 6, 043042 (2024) - Published 16 October, 2024
Giulio Chiribella, Kyrylo Simonov, and Xuanqiang Zhao
Phys. Rev. Research 6, 043043 (2024) - Published 17 October, 2024
Jonas B. Rigo and Andrew K. Mitchell
Phys. Rev. Research 6, 043044 (2024) - Published 17 October, 2024
Youssef Aziz Alaoui and Bruno Laburthe-Tolra
Phys. Rev. Research 6, 043045 (2024) - Published 17 October, 2024
Natanael Bort-Soldevila, Jaume Cunill-Subiranas, Nuria Del-Valle, Witlef Wieczorek, Gerard Higgins, Michael Trupke, and Carles Navau
Phys. Rev. Research 6, 043046 (2024) - Published 17 October, 2024
Ehsan Faridi, Giovanni Vignale, and Se Kwon Kim
Phys. Rev. Research 6, 043047 (2024) - Published 18 October, 2024
Wei Zi, Siyi Wang, Hyunji Kim, Xiaoming Sun, Anupam Chattopadhyay, and Patrick Rebentrost
Phys. Rev. Research 6, 043048 (2024) - Published 18 October, 2024
Kohei Yajima, Hisanori Oshima, Ken Mochizuki, and Yohei Fuji
Phys. Rev. Research 6, 043049 (2024) - Published 18 October, 2024
Ryosuke Shibukawa, Ryo Tamura, and Koji Tsuda
Phys. Rev. Research 6, 043050 (2024) - Published 21 October, 2024
Alejandro Vivas-Viaña, Diego Martín-Cano, and Carlos Sánchez Muñoz
Phys. Rev. Research 6, 043051 (2024) - Published 22 October, 2024
Soumya Radhakrishnan, Dag Hanstorp, and Ademir Aleman
Phys. Rev. Research 6, 043052 (2024) - Published 22 October, 2024
Francesco Mori, Satya N. Majumdar, and Pierpaolo Vivo
Phys. Rev. Research 6, 043053 (2024) - Published 22 October, 2024
Zhu-Guang Chen, Cunzhong Lou, Kaige Hu, and Lih-King Lim
Phys. Rev. Research 6, 043054 (2024) - Published 22 October, 2024
Johannes Nauta and Manlio De Domenico
Phys. Rev. Research 6, 043055 (2024) - Published 23 October, 2024
Jonas B. Profe, Luke C. Rhodes, Matteo Dürrnagel, Rebecca Bisset, Carolina A. Marques, Shun Chi, Tilman Schwemmer, Ronny Thomale, Dante M. Kennes, Chris A. Hooley, and Peter Wahl
Phys. Rev. Research 6, 043057 (2024) - Published 23 October, 2024
Jian Gao, Changgui Gu, Chuansheng Shen, and Huijie Yang
Phys. Rev. Research 6, 043058 (2024) - Published 23 October, 2024
V. A. Zakharov, S. Polla, A. Donís Vela, P. Emonts, M. J. Pacholski, J. Tworzydło, and C. W. J. Beenakker
Phys. Rev. Research 6, 043059 (2024) - Published 23 October, 2024
Bharti, Quentin Ferreira, Aditya Jha, Andreas Carlson, David S. Dean, Yacine Amarouchene, Tak Shing Chan, and Thomas Salez
Phys. Rev. Research 6, 043060 (2024) - Published 23 October, 2024
Yanzhen Cai, Wei Ren, Xijing Dai, Jing Kang, Weizhen Zhuo, Mingtai Xie, Anmin Zhang, Jianting Ji, Feng Jin, Zheng Zhang, and Qingming Zhang
Phys. Rev. Research 6, 043061 (2024) - Published 23 October, 2024
George Stepaniants, Alasdair D. Hastewell, Dominic J. Skinner, Jan F. Totz, and Jörn Dunkel
Phys. Rev. Research 6, 043062 (2024) - Published 23 October, 2024
Benchen Huang, Yi-Ting Chen, Brajesh Gupt, Martin Suchara, Anh Tran, Sam McArdle, and Giulia Galli
Phys. Rev. Research 6, 043063 (2024) - Published 24 October, 2024
Subhadip Chakraborti and Vasily Zaburdaev
Phys. Rev. Research 6, 043064 (2024) - Published 24 October, 2024
Raúl A. Briceño, Robert G. Edwards, Miller Eaton, Carlos González-Arciniegas, Olivier Pfister, and George Siopsis
Phys. Rev. Research 6, 043065 (2024) - Published 25 October, 2024
Xiao-Lin Zhao, Nie-Wei Wang, Yue-Jiao Zhang, Yu-Meng Gao, Peng-Lai Gong, Chen-Dong Jin, Xiaohong Zheng, Jiang-Long Wang, and Xing-Qiang Shi
Phys. Rev. Research 6, 043066 (2024) - Published 25 October, 2024
Rajesh K. Malla, Hiroki Sukeno, Hongye Yu, Tzu-Chieh Wei, Andreas Weichselbaum, and Robert M. Konik
Phys. Rev. Research 6, 043068 (2024) - Published 25 October, 2024
Jiewei Ding, Jiahao Su, Ho-Kin Tang, and Wing Chi Yu
Phys. Rev. Research 6, 043070 (2024) - Published 25 October, 2024
Hiroyasu Matsuura, Alexander Riss, Fabian Garmroudi, Michael Parzer, and Ernst Bauer
Phys. Rev. Research 6, 043071 (2024) - Published 28 October, 2024
Yang Du, Kui Li, Jin Niu, Angyi Lin, Jie Li, Zhongwei Fan, Guorong Wu, Xiaoshi Zhang, and Fucai Zhang
Phys. Rev. Research 6, 043072 (2024) - Published 28 October, 2024
H. Kamata, H. Irie, S. Sasaki, N. Kumada, and K. Muraki
Phys. Rev. Research 6, 043073 (2024) - Published 28 October, 2024
Daigo Oue, J. B. Pendry, and Mário G. Silveirinha
Phys. Rev. Research 6, 043074 (2024) - Published 28 October, 2024
J. P. Palastro, D. Ramsey, M. Formanek, J. Vieira, and A. Di Piazza
Phys. Rev. Research 6, 043075 (2024) - Published 29 October, 2024
Kai Wang, Simon J. U. White, Alexander Szameit, Andrey A. Sukhorukov, and Alexander S. Solntsev
Phys. Rev. Research 6, 043076 (2024) - Published 29 October, 2024
Jiangtian Yao and Pieter W. Claeys
Phys. Rev. Research 6, 043077 (2024) - Published 29 October, 2024
Jonas B. Profe, Lennart Klebl, Francesco Grandi, Hendrik Hohmann, Matteo Dürrnagel, Tilman Schwemmer, Ronny Thomale, and Dante M. Kennes
Phys. Rev. Research 6, 043078 (2024) - Published 30 October, 2024
M. G. Huber, B. Heacock, I. Taminiau, D. G. Cory, D. Sarenac, R. Valdillez, and D. A. Pushin
Phys. Rev. Research 6, 043079 (2024) - Published 30 October, 2024
Ángel L. Corps, Armando Relaño, and Jad C. Halimeh
Phys. Rev. Research 6, 043080 (2024) - Published 1 November, 2024
Osama Ahmed, Felix Tennie, and Luca Magri
Phys. Rev. Research 6, 043082 (2024) - Published 1 November, 2024
Ananda Roy, Sameer Erramilli, and Robert M. Konik
Phys. Rev. Research 6, 043083 (2024) - Published 4 November, 2024
Jing Yang
Phys. Rev. Research 6, 043084 (2024) - Published 4 November, 2024
Lu Li, Pengyue Gao, Wei Zhang, Guoji Liu, Jian Lv, and Yanchao Wang
Phys. Rev. Research 6, 043085 (2024) - Published 4 November, 2024
Sarah E. Spielman, Alicia Handian, Nina P. Inman, Thomas J. Carroll, and Michael W. Noel
Phys. Rev. Research 6, 043086 (2024) - Published 4 November, 2024
Chu Li, Ruiqi Wang, Qihuang Gong, and Yan Li
Phys. Rev. Research 6, 043087 (2024) - Published 4 November, 2024
Naohiro Okamoto, Takatoshi Aoki, and Yoshio Torii
Phys. Rev. Research 6, 043088 (2024) - Published 4 November, 2024
Chenhui Wang, Yongping Zhang, and V. V. Konotop
Phys. Rev. Research 6, 043089 (2024) - Published 4 November, 2024
F. Peña, C. A. Lindstrøm, J. Beinortaitė, J. Björklund Svensson, L. Boulton, S. Diederichs, B. Foster, J. M. Garland, P. González Caminal, G. Loisch, S. Schröder, M. Thévenet, S. Wesch, J. C. Wood, J. Osterhoff, and R. D'Arcy
Phys. Rev. Research 6, 043090 (2024) - Published 4 November, 2024
Gianmichele Blasi, Shishir Khandelwal, and Géraldine Haack
Phys. Rev. Research 6, 043091 (2024) - Published 4 November, 2024
Sudarshana Laha, Jonathan Bauermann, Frank Jülicher, Thomas C. T. Michaels, and Christoph A. Weber
Phys. Rev. Research 6, 043092 (2024) - Published 4 November, 2024
Rufus Boyack, Luca Delacrétaz, Éric Dupuis, and William Witczak-Krempa
Phys. Rev. Research 6, 043093 (2024) - Published 4 November, 2024
An examination of how conformal field theories respond to the presence of a magnetic field demonstrates that these systems typically transition into gapped phases but can also host metallic or non-Fermi-liquid behavior. These results offer new insights into the possible phases of quantum critical states under magnetic fields; more technically, they also characterize the spectrum of large-flux background monopole operators in conformal field theories.
Mei Yu, H. Chau Nguyen, and Stefan Nimmrichter
Phys. Rev. Research 6, 043094 (2024) - Published 4 November, 2024
Daniel K. Brattan, Masataka Matsumoto, Matteo Baggioli, and Andrea Amoretti
Phys. Rev. Research 6, 043097 (2024) - Published 4 November, 2024
Shirel Davidyan, Daniel A. Matoz-Fernandez, Alexander V. Butenko, Ireth García-Aguilar, Luca Giomi, and Eli Sloutskin
Phys. Rev. Research 6, 043098 (2024) - Published 4 November, 2024
J. Monzac, S. Smartsev, J. Huijts, L. Rovige, I. A. Andriyash, A. Vernier, V. Tomkus, V. Girdauskas, G. Raciukaitis, M. Mackevičiūtė, V. Stankevic, A. Cavagna, J. Kaur, A. Kalouguine, R. Lopez-Martens, and J. Faure
Phys. Rev. Research 6, 043099 (2024) - Published 5 November, 2024
Patrick Rupprecht, Nicolette G. Puskar, Daniel M. Neumark, and Stephen R. Leone
Phys. Rev. Research 6, 043100 (2024) - Published 5 November, 2024
Gordei Anchutkin, Frank Cichos, and Viktor Holubec
Phys. Rev. Research 6, 043101 (2024) - Published 5 November, 2024
Kenji Homma, Tsuyoshi Okubo, and Naoki Kawashima
Phys. Rev. Research 6, 043102 (2024) - Published 5 November, 2024
David Wagner, Masoud Shokri, and Dirk H. Rischke
Phys. Rev. Research 6, 043103 (2024) - Published 5 November, 2024
Liang Si, Eric Jacob, Wenfeng Wu, Andreas Hausoel, Juraj Krsnik, Paul Worm, Simone Di Cataldo, Oleg Janson, and Karsten Held
Phys. Rev. Research 6, 043104 (2024) - Published 5 November, 2024
Density-functional theory plus dynamical mean-field theory correctly predicted the Fermi surface and quasiparticle renormalization in infinite-layer nickelates. There is no Ni-3 Fermi surface and no pocket, justifying a minimal model with correlated Ni-3 orbital and weakly correlated pocket only.
Sajad Jafari, Atiyeh Bayani, Fatemeh Parastesh, Karthikeyan Rajagopal, Charo I. del Genio, Ludovico Minati, and Stefano Boccaletti
Phys. Rev. Research 6, 043105 (2024) - Published 5 November, 2024
S. Zhang, B. S. Tiwari, S. Ganesh, Y. Singh, and V. V. Flambaum
Phys. Rev. Research 6, 043106 (2024) - Published 5 November, 2024
Prateek Sehgal, Meera Ramaswamy, Edward Y. X. Ong, Christopher Ness, Itai Cohen, and Brian J. Kirby
Phys. Rev. Research 6, 043107 (2024) - Published 5 November, 2024
Xiao-Long Lü, Yan-Chao Zhang, Pei-Hao Fu, and Jun-Feng Liu
Phys. Rev. Research 6, 043108 (2024) - Published 6 November, 2024
Pablo Fernández and Miguel A. Martin-Delgado
Phys. Rev. Research 6, 043109 (2024) - Published 6 November, 2024
Eric R. Heller and David T. Limmer
Phys. Rev. Research 6, 043110 (2024) - Published 6 November, 2024
F. Cossu, D. Nafday, K. Palotás, M. Biderang, H.-S. Kim, A. Akbari, and I. Di Marco
Phys. Rev. Research 6, 043111 (2024) - Published 6 November, 2024
Riku Rantanen and Vladimir Eltsov
Phys. Rev. Research 6, 043112 (2024) - Published 7 November, 2024
Victor Roman-Rodriguez, David Fainsin, Guilherme L. Zanin, Nicolas Treps, Eleni Diamanti, and Valentina Parigi
Phys. Rev. Research 6, 043113 (2024) - Published 7 November, 2024
Yao Junxiang, Remko Fermin, Mariona Cabero, Kaveh Lahabi, and Jan Aarts
Phys. Rev. Research 6, 043114 (2024) - Published 7 November, 2024
Chaja Baruch, P. Bryan Changala, Yuval Shagam, and Yotam Soreq
Phys. Rev. Research 6, 043115 (2024) - Published 7 November, 2024
Laurent Nicolaï, Ján Minár, Maria Christine Richter, Olivier Heckmann, Jean-Michel Mariot, Uros Djukic, Johan Adell, Mats Leandersson, Janusz Sadowski, Jürgen Braun, Hubert Ebert, Jonathan D. Denlinger, Ivana Vobornik, Jun Fujii, Pavol Šutta, Gavin R. Bell, Martin Gmitra, and Karol Hricovini
Phys. Rev. Research 6, 043116 (2024) - Published 8 November, 2024
Zhenhuan Liu, Zihan Hao, and Hong-Ye Hu
Phys. Rev. Research 6, 043118 (2024) - Published 8 November, 2024
Rei Sato, Tetsuro Nikuni, Kayoko Nohara, Giorgio Salani, and Shohei Watabe
Phys. Rev. Research 6, 043119 (2024) - Published 8 November, 2024
Catie LeDesma, Kendall Mehling, Jieqiu Shao, John Drew Wilson, Penina Axelrad, Marco Nicotra, Dana Z. Anderson, and Murray Holland
Phys. Rev. Research 6, 043120 (2024) - Published 8 November, 2024
Daqiang Bao and Zhirong Lin
Phys. Rev. Research 6, 043121 (2024) - Published 8 November, 2024
Dalmin Bae, Junyoung Park, Myeonghyeon Kim, Haneul Kwak, Junhwan Kwon, and Y. Shin
Phys. Rev. Research 6, 043122 (2024) - Published 12 November, 2024
Fedor Šimkovic IV, Martin Leib, and Francisco Revson F. Pereira
Phys. Rev. Research 6, 043123 (2024) - Published 12 November, 2024
Haina Wang and Salvatore Torquato
Phys. Rev. Research 6, 043124 (2024) - Published 12 November, 2024
Felix Thomsen, Markus S. Kesselring, Stephen D. Bartlett, and Benjamin J. Brown
Phys. Rev. Research 6, 043125 (2024) - Published 12 November, 2024
Siji S. Saju, Raj Kumar Manna, and P. B. Sunil Kumar
Phys. Rev. Research 6, 043126 (2024) - Published 13 November, 2024
Aditya Prakash and Bharath Hebbe Madhusudhana
Phys. Rev. Research 6, 043127 (2024) - Published 12 November, 2024
Gian Marcello Andolina, Paolo Andrea Erdman, Frank Noé, Jukka Pekola, and Marco Schirò
Phys. Rev. Research 6, 043128 (2024) - Published 12 November, 2024
Eric Bonvin, Louisiane Devaud, Massimiliano Rossi, Andrei Militaru, Lorenzo Dania, Dmitry S. Bykov, Markus Teller, Tracy E. Northup, Lukas Novotny, and Martin Frimmer
Phys. Rev. Research 6, 043129 (2024) - Published 12 November, 2024
Zhaoyuan Meng and Yue Yang
Phys. Rev. Research 6, 043130 (2024) - Published 13 November, 2024
A. Said Ismail and Nilofar Taraki
Phys. Rev. Research 6, 043131 (2024) - Published 13 November, 2024
Hengxin Tan, Yiyang Jiang, Gregory T. McCandless, Julia Y. Chan, and Binghai Yan
Phys. Rev. Research 6, 043132 (2024) - Published 13 November, 2024
Sarah A. Willson, Aiden V. Harbick, Liana Shpani, Van Do, Helena Lew-Kiedrowska, Matthias U. Liepe, Mark K. Transtrum, and S. J. Sibener
Phys. Rev. Research 6, 043133 (2024) - Published 13 November, 2024
Antti Ranni, Subhomoy Haldar, Harald Havir, Sebastian Lehmann, Pasquale Scarlino, Andreas Baumgartner, Christian Schönenberger, Claes Thelander, Kimberly A. Dick, Patrick P. Potts, and Ville F. Maisi
Phys. Rev. Research 6, 043134 (2024) - Published 14 November, 2024
Carlos Naya, Tomaso Bertolini, and Johan Carlström
Phys. Rev. Research 6, 043135 (2024) - Published 14 November, 2024
Ruvi Lecamwasam, Tatiana Iakovleva, and Jason Twamley
Phys. Rev. Research 6, 043137 (2024) - Published 14 November, 2024
Yang Liu, Songtai Lv, Yuchen Meng, Zefan Tan, Erhai Zhao, and Haiyuan Zou
Phys. Rev. Research 6, 043139 (2024) - Published 14 November, 2024
Sai Zhou, Cuixiu Zheng, Haoxiang Xu, and Yaowen Liu
Phys. Rev. Research 6, 043140 (2024) - Published 14 November, 2024
Sayantika Bhowal and Nicola A. Spaldin
Phys. Rev. Research 6, 043141 (2024) - Published 14 November, 2024
Mikheil Kharbedia, Niccolò Caselli, Macarena Calero, Lara H. Moleiro, Jesús F. Castillo, José A. Santiago, Diego Herráez-Aguilar, and Francisco Monroy
Phys. Rev. Research 6, 043142 (2024) - Published 14 November, 2024
Chenxu Liu, Rafail Frantzeskakis, Sophia E. Economou, and Edwin Barnes
Phys. Rev. Research 6, 043143 (2024) - Published 15 November, 2024
J. Guo, D. Hill, V. Lauter, L. Stingaciu, P. Zolnierczuk, C. A. Ullrich, and D. K. Singh
Phys. Rev. Research 6, 043144 (2024) - Published 15 November, 2024
Yao Zhou and Peng Ye
Phys. Rev. Research 6, 043145 (2024) - Published 15 November, 2024
F. R. Pratama and Takeshi Nakanishi
Phys. Rev. Research 6, 043146 (2024) - Published 15 November, 2024
C. P. Tu, Z. Ma, H. R. Wang, Y. H. Jiao, D. Z. Dai, and S. Y. Li
Phys. Rev. Research 6, 043147 (2024) - Published 15 November, 2024
Andris Berzins, Maziar Saleh Ziabari, Yaser Silani, Ilja Fescenko, Joshua T. Damron, John F. Barry, Andrey Jarmola, Pauli Kehayias, Bryan A. Richards, Janis Smits, and Victor M. Acosta
Phys. Rev. Research 6, 043148 (2024) - Published 15 November, 2024
Adrian Seith, Ferdinand Evers, and Jan Wilhelm
Phys. Rev. Research 6, 043149 (2024) - Published 18 November, 2024
Yidian Tian, Yibo Hu, Yueming Zhou, Peixiang Lu, and Kunlong Liu
Phys. Rev. Research 6, 043150 (2024) - Published 18 November, 2024
Yoshitaka Inui, Edwin Ng, and Yoshihisa Yamamoto
Phys. Rev. Research 6, 043151 (2024) - Published 18 November, 2024
Aditi Chandra and Marcelo O. Magnasco
Phys. Rev. Research 6, 043152 (2024) - Published 18 November, 2024
Samuel Böhringer and Alexander Friedrich
Phys. Rev. Research 6, 043153 (2024) - Published 18 November, 2024
Abyay Ghosh, Piotr Chudzinski, and Myrta Grüning
Phys. Rev. Research 6, 043154 (2024) - Published 18 November, 2024
Daniel Burgarth, Paolo Facchi, Alexander Hahn, Mattias Johnsson, and Kazuya Yuasa
Phys. Rev. Research 6, 043155 (2024) - Published 18 November, 2024
X. H. Verbeek, D. Voderholzer, S. Schären, Y. Gachnang, N. A. Spaldin, and S. Bhowal
Phys. Rev. Research 6, 043157 (2024) - Published 18 November, 2024
Tim Matthies, Levente Rózsa, László Szunyogh, Roland Wiesendanger, and Elena Y. Vedmedenko
Phys. Rev. Research 6, 043158 (2024) - Published 18 November, 2024
Dominik Kiese, Nils Wentzell, Igor Krivenko, Olivier Parcollet, Karsten Held, and Friedrich Krien
Phys. Rev. Research 6, 043159 (2024) - Published 18 November, 2024
Yu Zhou and Holger Kantz
Phys. Rev. Research 6, 043160 (2024) - Published 18 November, 2024
Marian Rockenhäuser, Felix Kogel, Tatsam Garg, Sebastián A. Morales-Ramírez, and Tim Langen
Phys. Rev. Research 6, 043161 (2024) - Published 18 November, 2024
Stefano Bolognesi, Sven Bjarke Gudnason, and Roberto Menta
Phys. Rev. Research 6, 043162 (2024) - Published 18 November, 2024
Wei-Wei Zhang, Zheping Wu, Hengyue Jia, Wei Zhao, Qingbing Ji, Wei Pan, and Haobin Shi
Phys. Rev. Research 6, 043163 (2024) - Published 19 November, 2024
Daniel J. Bosworth, Matthew T. Eiles, and Peter Schmelcher
Phys. Rev. Research 6, 043164 (2024) - Published 19 November, 2024
H. Jia, T. Li, T. Wang, Y. Zhao, X. Zhang, H. Xu, Z. Liu, J. Liu, L. Lin, H. Xie, L. Feng, F. Wang, F. Zhu, J. Hao, S. Quan, K. Liu, and S. Huang
Phys. Rev. Research 6, 043165 (2024) - Published 19 November, 2024
Yafeng Chen, Shuowei An, Zhihao Lan, Liang An, and Zhongqing Su
Phys. Rev. Research 6, 043166 (2024) - Published 19 November, 2024
Hui Liu, Ali G. Moghaddam, Daniel Varjas, and Ion Cosma Fulga
Phys. Rev. Research 6, 043167 (2024) - Published 19 November, 2024
Tim Titze, Maximilian Staabs, Pia Henning, Karen Stroh, Stefan Mathias, Vasily Moshnyaga, and Daniel Steil
Phys. Rev. Research 6, 043168 (2024) - Published 19 November, 2024
Lewis Wright, Conor Mc Keever, Jeremy T. First, Rory Johnston, Jeremy Tillay, Skylar Chaney, Matthias Rosenkranz, and Michael Lubasch
Phys. Rev. Research 6, 043169 (2024) - Published 19 November, 2024
B. A. Levitan, Y. Oreg, E. Berg, M. S. Rudner, and I. Iorsh
Phys. Rev. Research 6, 043170 (2024) - Published 19 November, 2024
Shoukang Chang, Yunbin Yan, Lu Wang, Wei Ye, Xuan Rao, Huan Zhang, Liqing Huang, Mengmeng Luo, Yuetao Chen, Qiang Ma, and Shaoyan Gao
Phys. Rev. Research 6, 043171 (2024) - Published 19 November, 2024
Guilherme Catumba, Atsuki Hiraguchi, Wei-Shu Hou, Karl Jansen, Ying-Jer Kao, C.-J. David Lin, Alberto Ramos, and Mugdha Sarkar
Phys. Rev. Research 6, 043172 (2024) - Published 19 November, 2024
Ali Emami Kopaei, Krzysztof Giergiel, and Krzysztof Sacha
Phys. Rev. Research 6, 043173 (2024) - Published 20 November, 2024
Kosaku Masuda, Isao T. Tokuda, and Hirokazu Fukuda
Phys. Rev. Research 6, 043174 (2024) - Published 20 November, 2024
D. L. Craig, N. Ares, and E. M. Gauger
Phys. Rev. Research 6, 043175 (2024) - Published 20 November, 2024
M. Hofmann, D. Trabert, A. Geyer, N. Anders, J. Kruse, J. Rist, L. Ph. H. Schmidt, T. Jahnke, M. Kunitski, M. S. Schöffler, S. Eckart, and R. Dörner
Phys. Rev. Research 6, 043176 (2024) - Published 20 November, 2024
Lea Haas, Peter Mlkvik, Nicola A. Spaldin, and Claude Ederer
Phys. Rev. Research 6, 043177 (2024) - Published 20 November, 2024
Yuki Yamamoto and Hiroaki Katsuragi
Phys. Rev. Research 6, 043178 (2024) - Published 20 November, 2024
Shivang Rawat and Stefano Martiniani
Phys. Rev. Research 6, 043179 (2024) - Published 20 November, 2024
Zean Guo, Jiawei Wang, Mengmeng Li, Yawei Lv, Nianduan Lu, Chong Bi, Yeliang Wang, Ling Li, and Ming Liu
Phys. Rev. Research 6, 043180 (2024) - Published 20 November, 2024
G. Guillon and P. Honvault
Phys. Rev. Research 6, 043181 (2024) - Published 21 November, 2024
Guangze Chen, Jose L. Lado, and Fei Song
Phys. Rev. Research 6, 043182 (2024) - Published 21 November, 2024
Longhan Wang, Yifan Sun, and Xiangdong Zhang
Phys. Rev. Research 6, 043183 (2024) - Published 21 November, 2024
Abhishek Nag, Luciano Zinni, Jaewon Choi, J. Li, Sijia Tu, A. C. Walters, S. Agrestini, S. M. Hayden, Matías Bejas, Zefeng Lin, H. Yamase, Kui Jin, M. García-Fernández, J. Fink, Andrés Greco, and Ke-Jin Zhou
Phys. Rev. Research 6, 043184 (2024) - Published 21 November, 2024
Zhihao Liu, Shengnan Zhang, Zhong Fang, Hongming Weng, and Quansheng Wu
Phys. Rev. Research 6, 043185 (2024) - Published 21 November, 2024
Hayata Morisaki, Kosuke Mitarai, Keisuke Fujii, and Yuya O. Nakagawa
Phys. Rev. Research 6, 043186 (2024) - Published 21 November, 2024
Naoki Takamura, Tatsuya Miyamoto, Ryohei Ikeda, Tetsushi Kubo, Masaki Yamamoto, Hiroki Sato, Yang Han, Takayuki Ito, Tetsu Sato, Akitoshi Nakano, Hiroshi Sawa, and Hiroshi Okamoto
Phys. Rev. Research 6, 043187 (2024) - Published 22 November, 2024
Damian R. Sowinski, Adam Frank, and Gourab Ghoshal
Phys. Rev. Research 6, 043188 (2024) - Published 22 November, 2024
Grayson R. Frazier, Junjia Zhang, Junyi Zhang, Xinyu Sun, and Yi Li
Phys. Rev. Research 6, 043189 (2024) - Published 22 November, 2024
Ting-Yu Chen, Chin-Hsuan Chen, David Mikolas, Santosh Chiniwar, Angus Huang, Chung-Huang Lin, Cheng-Maw Cheng, Fumio Komori, Iwao Matsuda, Chung-Yu Mou, Horng-Tay Jeng, Woei Wu Pai, and S.-J. Tang
Phys. Rev. Research 6, 043190 (2024) - Published 22 November, 2024
Liang-Ying Chih and Murray Holland
Phys. Rev. Research 6, 043191 (2024) - Published 25 November, 2024
Jorge Olmos-Trigo, Manuel Nieto-Vesperinas, and Gabriel Molina-Terriza
Phys. Rev. Research 6, 043192 (2024) - Published 25 November, 2024
M. Yvaine et al. (nEXO Collaboration)
Phys. Rev. Research 6, 043193 (2024) - Published 25 November, 2024
Shirin Panahi, Ling-Wei Kong, Mohammadamin Moradi, Zheng-Meng Zhai, Bryan Glaz, Mulugeta Haile, and Ying-Cheng Lai
Phys. Rev. Research 6, 043194 (2024) - Published 25 November, 2024
Zhao-Ming Wang and Tuo-Zhi Chen
Phys. Rev. Research 6, 043195 (2024) - Published 25 November, 2024
Changchun Zhong
Phys. Rev. Research 6, 043196 (2024) - Published 25 November, 2024
Alice Bellettini, Andrea Richaud, and Vittorio Penna
Phys. Rev. Research 6, 043197 (2024) - Published 25 November, 2024
Mayank Vashistha, Niels Breckwoldt, Cecilia M. Casadei, Torben Hannemann, Gebhard F. X. Schertler, and Robin Santra
Phys. Rev. Research 6, 043198 (2024) - Published 25 November, 2024
Roberto Corral López, Samir Suweis, Sandro Azaele, and Miguel A. Muñoz
Phys. Rev. Research 6, 043199 (2024) - Published 25 November, 2024
Even Thingstad, Pierre Fromholz, Flavio Ronetti, Daniel Loss, and Jelena Klinovaja
Phys. Rev. Research 6, 043200 (2024) - Published 25 November, 2024
Tim Bauer, Francesco Buccheri, Alessandro De Martino, and Reinhold Egger
Phys. Rev. Research 6, 043201 (2024) - Published 25 November, 2024
Heitor P. Casagrande, Bo Xing, William J. Munro, Chu Guo, and Dario Poletti
Phys. Rev. Research 6, 043202 (2024) - Published 25 November, 2024
Moritz Cygorek, Brendon W. Lovett, Jonathan Keeling, and Erik M. Gauger
Phys. Rev. Research 6, 043203 (2024) - Published 25 November, 2024
Giulio Virginio Clemente and Diego Garlaschelli
Phys. Rev. Research 6, 043204 (2024) - Published 25 November, 2024
David March-Pons, Ezequiel E. Ferrero, and M. Carmen Miguel
Phys. Rev. Research 6, 043205 (2024) - Published 25 November, 2024
Amit Dawadi and Arshad Kudrolli
Phys. Rev. Research 6, 043206 (2024) - Published 25 November, 2024
Priyanka Kumari, Olexandr Kurochkin, Vassili G. Nazarenko, Oleg D. Lavrentovich, Dmitry Golovaty, and Peter Sternberg
Phys. Rev. Research 6, 043207 (2024) - Published 25 November, 2024
Jaewoong Jang
Phys. Rev. Research 6, 043208 (2024) - Published 25 November, 2024
Polina Blinova, Evgeny Moiseev, and Kai Wang
Phys. Rev. Research 6, 043209 (2024) - Published 25 November, 2024
Kai Kihara, Katsuhiro Nishinari, Yasunobu Ando, and Takahiro Ezaki
Phys. Rev. Research 6, 043210 (2024) - Published 26 November, 2024
Yuanyang Ren, Yang Wang, Kai Wu, and David Cubero
Phys. Rev. Research 6, 043211 (2024) - Published 26 November, 2024
Paolo Stornati, Antonio Acin, Ulysse Chabaud, Alexandre Dauphin, Valentina Parigi, and Federico Centrone
Phys. Rev. Research 6, 043212 (2024) - Published 26 November, 2024
Emanuele Sobacchi, Masanori Iwamoto, Lorenzo Sironi, and Tsvi Piran
Phys. Rev. Research 6, 043213 (2024) - Published 27 November, 2024
Tomás P. Espinoza, Sebastian C. Carrasco, José Rogan, Juan Alejandro Valdivia, and Vladimir S. Malinovsky
Phys. Rev. Research 6, 043214 (2024) - Published 27 November, 2024
Payman Mahmoudi, Atirach Ritboon, and Radim Filip
Phys. Rev. Research 6, 043215 (2024) - Published 27 November, 2024
Björn Annby-Andersson, Debankur Bhattacharyya, Pharnam Bakhshinezhad, Daniel Holst, Guilherme De Sousa, Christopher Jarzynski, Peter Samuelsson, and Patrick P. Potts
Phys. Rev. Research 6, 043216 (2024) - Published 27 November, 2024
Yusuke Himeoka, Shuhei A. Horiguchi, and Tetsuya J. Kobayashi
Phys. Rev. Research 6, 043217 (2024) - Published 27 November, 2024
Ivan A. Bocanegra-Garay, Miguel Castillo-Celeita, J. Negro, L. M. Nieto, and Fernando J. Gómez-Ruiz
Phys. Rev. Research 6, 043218 (2024) - Published 27 November, 2024
K. Michael Martini, Satya Spandana Boddu, Megan N. Taylor, Ilya Nemenman, and Nic M. Vega
Phys. Rev. Research 6, 043219 (2024) - Published 2 December, 2024
Zhiren He and Guru Khalsa
Phys. Rev. Research 6, 043220 (2024) - Published 2 December, 2024
Guoding Liu, Ziyi Xie, Zitai Xu, and Xiongfeng Ma
Phys. Rev. Research 6, 043221 (2024) - Published 2 December, 2024
Emil Raaholt Ingelsten, Anton Frisk Kockum, and Ariadna Soro
Phys. Rev. Research 6, 043222 (2024) - Published 2 December, 2024
Lars Kamin and Norbert Lütkenhaus
Phys. Rev. Research 6, 043223 (2024) - Published 2 December, 2024
Yuta Kataoka, Jun Haruyama, Osamu Sugino, and Motoyuki Shiga
Phys. Rev. Research 6, 043224 (2024) - Published 2 December, 2024
Saeed Nasiri, Dmitry Tumakov, Monika Stanke, Andrzej Kędziorski, Ludwik Adamowicz, and Sergiy Bubin
Phys. Rev. Research 6, 043225 (2024) - Published 2 December, 2024
Xin Wang, Jia-Qi Li, Tao Liu, Adam Miranowicz, and Franco Nori
Phys. Rev. Research 6, 043226 (2024) - Published 2 December, 2024
Naixu Guo, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 6, 043227 (2024) - Published 2 December, 2024
Selina Dirnböck, Seung-Sup B. Lee, Fabian B. Kugler, Sebastian Huber, Jan von Delft, Karsten Held, and Markus Wallerberger
Phys. Rev. Research 6, 043228 (2024) - Published 2 December, 2024
Neill Lambert, Mauro Cirio, Jhen-Dong Lin, Paul Menczel, Pengfei Liang, and Franco Nori
Phys. Rev. Research 6, 043229 (2024) - Published 2 December, 2024
Marco A. Rodríguez-García, Ruynet L. de Matos Filho, and Pablo Barberis-Blostein
Phys. Rev. Research 6, 043230 (2024) - Published 2 December, 2024
Km Rubi, Denis R. Candido, Manish Dumen, Shengwei Zeng, Emily L.Q.N. Ammerlaan, Femke Bangma, Mun K. Chan, Michel Goiran, Ariando Ariando, Suvankar Chakraverty, Walter Escoffier, Uli Zeitler, and Neil Harrison
Phys. Rev. Research 6, 043231 (2024) - Published 3 December, 2024
A. D. White, S. Popa, J. Mellado-Muñoz, N. J. Fitch, B. E. Sauer, J. Lim, and M. R. Tarbutt
Phys. Rev. Research 6, 043232 (2024) - Published 3 December, 2024
Maximilian Uhl, Piotr Kot, Robert Drost, Haonan Huang, Joachim Ankerhold, Juan Carlos Cuevas, and Christian R. Ast
Phys. Rev. Research 6, 043233 (2024) - Published 3 December, 2024
Yoshiaki Kawase, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 6, 043234 (2024) - Published 3 December, 2024
Manashee Adhikary, Marek Kozoň, Ravitej Uppu, and Willem L. Vos
Phys. Rev. Research 6, 043235 (2024) - Published 4 December, 2024
Rui Li, V. J. Martínez-Lahuerta, S. Seckmeyer, Klemens Hammerer, and Naceur Gaaloul
Phys. Rev. Research 6, 043236 (2024) - Published 4 December, 2024
Brandon R. Ferrer, Alejandro V. Arzola, Denis Boyer, and Juan Ruben Gomez-Solano
Phys. Rev. Research 6, 043237 (2024) - Published 4 December, 2024
Simon Bolduc Beaudoin, Edouard Pinsolle, and Bertrand Reulet
Phys. Rev. Research 6, 043238 (2024) - Published 5 December, 2024
Takayuki Suzuki
Phys. Rev. Research 6, 043239 (2024) - Published 5 December, 2024
Patrick H. Wilhelm, Andreas M. Läuchli, and Mathias S. Scheurer
Phys. Rev. Research 6, 043240 (2024) - Published 5 December, 2024
Puya Mirkarimi, Ishaan Shukla, David C. Hoyle, Ross Williams, and Nicholas Chancellor
Phys. Rev. Research 6, 043241 (2024) - Published 5 December, 2024
Hao Sun, Xiaofan Wang, Li Zeng, and Weiqing Zhang
Phys. Rev. Research 6, 043242 (2024) - Published 5 December, 2024
Mehdi Arfaoui, Robson Ferreira, and Sihem Jaziri
Phys. Rev. Research 6, 043243 (2024) - Published 5 December, 2024
A detailed theoretical description of the high-energy states that form the escape continuum for photoejected electrons in a tr-ARPES experiment, paying particular attention to their momentum dispersions, time-reversal symmetries, and spin characteristics. The analysis of the various symmetries fulfilled by such unbound states reveals the existence of a momentum-valley locking for the unbound final electron states, sharing various features with the valley Hall effect.
Bikash Kumar Das, C. Granados, M. Krüger, and Marcelo F. Ciappina
Phys. Rev. Research 6, 043244 (2024) - Published 6 December, 2024
Mary Kreidel, Xuanjing Chu, Jesse Balgley, Abhinandan Antony, Nishchhal Verma, Julian Ingham, Leonardo Ranzani, Raquel Queiroz, Robert M. Westervelt, James Hone, and Kin Chung Fong
Phys. Rev. Research 6, 043245 (2024) - Published 6 December, 2024
Michele Fava, Lorenzo Piroli, Denis Bernard, and Adam Nahum
Phys. Rev. Research 6, 043246 (2024) - Published 6 December, 2024
Xin Jia, Weixin Liu, Shengxian Xiao, Zimo Zhang, Bin Huang, Tao Wang, Bing Chen, and Heng Shen
Phys. Rev. Research 6, 043247 (2024) - Published 9 December, 2024
Aaron Hui
Phys. Rev. Research 6, 043248 (2024) - Published 9 December, 2024
Spiro Gicev, Lloyd C. L. Hollenberg, and Muhammad Usman
Phys. Rev. Research 6, 043249 (2024) - Published 9 December, 2024
Jiahui Li, Rosario Fazio, Yingdan Wang, and Stefano Chesi
Phys. Rev. Research 6, 043250 (2024) - Published 10 December, 2024
Ismail Qunbar, Michael Vennettilli, and Amir Erez
Phys. Rev. Research 6, 043252 (2024) - Published 10 December, 2024
Stefano Veroni, Markus Müller, and Giacomo Giudice
Phys. Rev. Research 6, 043253 (2024) - Published 10 December, 2024
Kevin Lively, Tim Bode, Jochen Szangolies, Jian-Xin Zhu, and Benedikt Fauseweh
Phys. Rev. Research 6, 043254 (2024) - Published 10 December, 2024
F. Domínguez, D. Yousaf, J. Berrocal, M. J. Gutiérrez, J. Sánchez, M. Block, and D. Rodríguez
Phys. Rev. Research 6, 043255 (2024) - Published 10 December, 2024
Yu-Jie Liu, Kirill Shtengel, and Frank Pollmann
Phys. Rev. Research 6, 043256 (2024) - Published 11 December, 2024
Giulio Virginio Clemente, Claudio J. Tessone, and Diego Garlaschelli
Phys. Rev. Research 6, 043257 (2024) - Published 11 December, 2024
Yuanchen Zhao and Dong E. Liu
Phys. Rev. Research 6, 043258 (2024) - Published 11 December, 2024
Masaya Nakagawa, Hosho Katsura, and Masahito Ueda
Phys. Rev. Research 6, 043259 (2024) - Published 11 December, 2024
Yuke Li and Victor Steinberg
Phys. Rev. Research 6, 043260 (2024) - Published 11 December, 2024
Valentin Gebhart, Manuel Gessner, and Augusto Smerzi
Phys. Rev. Research 6, 043261 (2024) - Published 12 December, 2024
L. Madail, R. G. Dias, and J. Fernández-Rossier
Phys. Rev. Research 6, 043262 (2024) - Published 12 December, 2024
Taro Ando and Tomoko Otsu-Hyodo
Phys. Rev. Research 6, 043263 (2024) - Published 12 December, 2024
Simon Panyella Pedersen, Georg M. Bruun, and Thomas Pohl
Phys. Rev. Research 6, 043264 (2024) - Published 12 December, 2024
Shankar Sivarajan, Yu Shi, Katherine M. Xiang, Clary Rodríguez-Cruz, Christopher L. Porter, Geran M. Kostecki, Leslie Tung, John C. Crocker, and Daniel H. Reich
Phys. Rev. Research 6, 043265 (2024) - Published 12 December, 2024
Elisa Bazzani, Anna Valeria Guglielmi, Roberto Corvaja, Nicola Laurenti, Filippo Romanato, Gianluca Ruffato, Andrea Vogliardi, Giuseppe Vallone, Lorenzo Vangelista, and Paolo Villoresi
Phys. Rev. Research 6, 043266 (2024) - Published 12 December, 2024
Zeqiao Zhou, Yuxuan Du, Xu-Fei Yin, Shanshan Zhao, Xinmei Tian, and Dacheng Tao
Phys. Rev. Research 6, 043267 (2024) - Published 12 December, 2024
P. Robert and D. O. Sabulsky
Phys. Rev. Research 6, 043268 (2024) - Published 12 December, 2024
Satyaki Manna, Anubhav Chaturvedi, and Debashis Saha
Phys. Rev. Research 6, 043269 (2024) - Published 12 December, 2024
Lukas Martinetz, Benjamin A. Stickler, Ksenija Simonović, Richard Ferstl, Christian Brand, Markus Arndt, and Klaus Hornberger
Phys. Rev. Research 6, 043270 (2024) - Published 13 December, 2024
S. Luo, R. Weissenbilder, H. Laurell, R. Y. Bello, C. Marante, M. Ammitzböll, L. Neoričić, A. Ljungdahl, R. J. Squibb, R. Feifel, M. Gisselbrecht, C. L. Arnold, F. Martín, E. Lindroth, L. Argenti, D. Busto, and A. L'Huillier
Phys. Rev. Research 6, 043271 (2024) - Published 13 December, 2024
Youjia Huang, Shu Nagata, Joseph Jachinowski, Jiazhong Hu, and Cheng Chin
Phys. Rev. Research 6, 043272 (2024) - Published 13 December, 2024
Krishanu Roychowdhury, Jan Attig, Simon Trebst, and Michael J. Lawler
Phys. Rev. Research 6, 043273 (2024) - Published 13 December, 2024
A. Stathopulos, S. Skupin, B. Zhou, P. U. Jepsen, and L. Bergé
Phys. Rev. Research 6, 043274 (2024) - Published 13 December, 2024
Giorgio Nicoletti and Daniel Maria Busiello
Phys. Rev. Research 6, 043275 (2024) - Published 13 December, 2024
K. Raspe, L. Kazak, N. Iwe, B. Krebs, F. Martinez, K.-H. Meiwes-Broer, and J. Tiggesbäumker
Phys. Rev. Research 6, 043276 (2024) - Published 13 December, 2024
Brian Cunningham
Phys. Rev. Research 6, 043277 (2024) - Published 16 December, 2024
Michael Schilling, Francesco Preti, Matthias M. Müller, Tommaso Calarco, and Felix Motzoi
Phys. Rev. Research 6, 043278 (2024) - Published 16 December, 2024
Júlia Barberà-Rodríguez, Nicolas Gama, Anand Kumar Narayanan, and David Joseph
Phys. Rev. Research 6, 043279 (2024) - Published 16 December, 2024
Riccardo Rende, Sebastian Goldt, Federico Becca, and Luciano Loris Viteritti
Phys. Rev. Research 6, 043280 (2024) - Published 16 December, 2024
Agniva Datta, Carsten Beta, and Robert Großmann
Phys. Rev. Research 6, 043281 (2024) - Published 16 December, 2024
Many living organisms, such as bacteria, cells, and sperm but also sheep and fish, intermittently switch between an active mode of locomotion, pauses, and turning maneuvers. A framework based on stochastic modeling and renewal theory enables deciphering the rules behind the seemingly random motility.
Amichay Vardi, Alba Ramos, and Tsampikos Kottos
Phys. Rev. Research 6, 043282 (2024) - Published 16 December, 2024
Nadine Nabben, Giacomo Sala, Ulrich Nowak, Matthias Krüger, and Sebastian T. B. Goennenwein
Phys. Rev. Research 6, 043283 (2024) - Published 16 December, 2024
Robert Ott, Torsten V. Zache, Maximilian Prüfer, Sebastian Erne, Mohammadamin Tajik, Hannes Pichler, Jörg Schmiedmayer, and Peter Zoller
Phys. Rev. Research 6, 043284 (2024) - Published 16 December, 2024
Marcello De Donno, Luiza Angheluta, Ken R. Elder, and Marco Salvalaglio
Phys. Rev. Research 6, 043285 (2024) - Published 16 December, 2024
Lukas Johannes Splitthoff, Miguel Carrera Belo, Guliuxin Jin, Yu Liu, Eliska Greplova, and Christian Kraglund Andersen
Phys. Rev. Research 6, 043286 (2024) - Published 16 December, 2024
Senwei Liang, Karol Kowalski, Chao Yang, and Nicholas P. Bauman
Phys. Rev. Research 6, 043287 (2024) - Published 17 December, 2024
Marcel Niedermeier, Marc Nairn, Christian Flindt, and Jose L. Lado
Phys. Rev. Research 6, 043288 (2024) - Published 17 December, 2024
Victor Gitton and Mischa P. Woods
Phys. Rev. Research 6, 043289 (2024) - Published 18 December, 2024
C. Reichhardt and C. J. O. Reichhardt
Phys. Rev. Research 6, 043290 (2024) - Published 18 December, 2024
Yishui Zhou, Min-Kai Lee, Sabreen Hammouda, Sheetal Devi, Shin-Ichiro Yano, Romain Sibille, Oksana Zaharko, Wolfgang Schmidt, Karin Schmalzl, Ketty Beauvois, Eric Ressouche, Po-Chun Chang, Chun-Hao Huang, Lieh-Jeng Chang, Thomas Brückel, and Yixi Su
Phys. Rev. Research 6, 043291 (2024) - Published 18 December, 2024
Iman Marvian
Phys. Rev. Research 6, 043292 (2024) - Published 18 December, 2024
Feixiang Wang, Wenqiang Hua, Changzhe Zhao, Haipeng Zhang, Shumin Yang, Xiuhong Li, Biao Deng, Honglan Xie, and Tiqiao Xiao
Phys. Rev. Research 6, 043293 (2024) - Published 19 December, 2024
Abhijeet Alase, Kevin D. Stubbs, Barry C. Sanders, and David L. Feder
Phys. Rev. Research 6, 043294 (2024) - Published 20 December, 2024
Changjiang Yi, Nikolai Peshcherenko, Yishui Zhou, Kartik Samanta, Qun Yang, Subhajit Roychowdhury, Premakumar Yanda, Horst Borrmann, Maia G. Vergniory, Yang Zhang, Yixi Su, Chandra Shekhar, and Claudia Felser
Phys. Rev. Research 6, 043295 (2024) - Published 19 December, 2024
Miika Rasola, Samuel Klaver, Jian Ma, Priyank Singh, Tuomas Uusnäkki, Heikki Suominen, and Mikko Möttönen
Phys. Rev. Research 6, 043297 (2024) - Published 19 December, 2024
R. Grimaudo, G. Falci, A. Messina, E. Paladino, A. Sergi, E. Solano, and D. Valenti
Phys. Rev. Research 6, 043298 (2024) - Published 20 December, 2024
Armand Leclerc, Guillaume Laibe, and Nicolas Perez
Phys. Rev. Research 6, 043299 (2024) - Published 20 December, 2024
Akihiro Mizutani and Toyohiro Tsurumaru
Phys. Rev. Research 6, 043300 (2024) - Published 20 December, 2024
Kyohei Takae and Kota Mitsumoto
Phys. Rev. Research 6, 043302 (2024) - Published 20 December, 2024
O. Jiménez, M. A. Solís-Prosser, A. Delgado, and L. Neves
Phys. Rev. Research 6, 043303 (2024) - Published 23 December, 2024
Giovanna Lani and Nicola Marzari
Phys. Rev. Research 6, 043304 (2024) - Published 23 December, 2024
Kathleen Barsse, Paolo Perinotti, Alessandro Tosini, and Leonardo Vaglini
Phys. Rev. Research 6, 043305 (2024) - Published 23 December, 2024
Soham Ghosh, Vladlen Galetsky, Pol Julià Farré, Christian Deppe, Roberto Ferrara, and Holger Boche
Phys. Rev. Research 6, 043306 (2024) - Published 23 December, 2024
Jonas Schäfer, Benjamin A. Stickler, and Klaus Hornberger
Phys. Rev. Research 6, 043307 (2024) - Published 23 December, 2024
Miho Itoi, Kazuyoshi Yoshimi, Hanming Ma, Takahiro Misawa, Takao Tsumuraya, Dilip Bhoi, Tokutaro Komatsu, Hatsumi Mori, Yoshiya Uwatoko, and Hitoshi Seo
Phys. Rev. Research 6, 043308 (2024) - Published 23 December, 2024
Qiangqiang Gu, Shishir Kumar Pandey, and Yihao Lin
Phys. Rev. Research 6, 043309 (2024) - Published 23 December, 2024
Weiyi Wang, Jonathan Barés, Mathieu Renouf, and Emilien Azéma
Phys. Rev. Research 6, 043310 (2024) - Published 24 December, 2024
Jon Lasa-Alonso, Chiara Devescovi, Carlos Maciel-Escudero, Aitzol García-Etxarri, and Gabriel Molina-Terriza
Phys. Rev. Research 6, 043311 (2024) - Published 24 December, 2024
M. Hidalgo-Soria and E. F. Koslover
Phys. Rev. Research 6, 043312 (2024) - Published 24 December, 2024
Hossein Hosseinabadi, Darrick E. Chang, and Jamir Marino
Phys. Rev. Research 6, 043313 (2024) - Published 26 December, 2024
Hossein Hosseinabadi, Darrick E. Chang, and Jamir Marino
Phys. Rev. Research 6, 043314 (2024) - Published 26 December, 2024
T. M. A. Fink
Phys. Rev. Research 6, 043315 (2024) - Published 26 December, 2024
Benchi Zhao, Kosuke Ito, and Keisuke Fujii
Phys. Rev. Research 6, 043316 (2024) - Published 26 December, 2024
Paul Fischer, Jonas Stricker, Christoph E. Düllmann, Dennis Renisch, Lutz Schweikhard, and Christian Tantardini
Phys. Rev. Research 6, 043317 (2024) - Published 26 December, 2024
Shohei Miyakoshi, Takanori Sugimoto, Tomonori Shirakawa, Seiji Yunoki, and Hiroshi Ueda
Phys. Rev. Research 6, 043318 (2024) - Published 26 December, 2024
Ilian Pihlajamaa and Liesbeth M. C. Janssen
Phys. Rev. Research 6, 043319 (2024) - Published 26 December, 2024
A. Ganfornina-Andrades, J. E. Vázquez-Lozano, and I. Liberal
Phys. Rev. Research 6, 043320 (2024) - Published 26 December, 2024
Giovanni Di Bartolomeo, Michele Vischi, Tommaso Feri, Angelo Bassi, and Sandro Donadi
Phys. Rev. Research 6, 043321 (2024) - Published 26 December, 2024
Lior Oppenheim, Maciej Koch-Janusz, Snir Gazit, and Zohar Ringel
Phys. Rev. Research 6, 043322 (2024) - Published 26 December, 2024
Mathieu Dumergue et al.
Phys. Rev. Research 6, 043323 (2024) - Published 27 December, 2024
Patrick Johansen Sarsfield, Aitor Garcia-Ruiz (艾飛宇), and Vladimir I. Fal'ko
Phys. Rev. Research 6, 043324 (2024) - Published 27 December, 2024
Shunta Arai and Satoshi Takabe
Phys. Rev. Research 6, 043325 (2024) - Published 27 December, 2024
Julian Berberich, Daniel Fink, Daniel Pranjić, Christian Tutschku, and Christian Holm
Phys. Rev. Research 6, 043326 (2024) - Published 27 December, 2024
Teruaki Nagasawa, Kohtaro Kato, Eyuri Wakakuwa, and Francesco Buscemi
Phys. Rev. Research 6, 043327 (2024) - Published 27 December, 2024
Yigui Zhong, Takeshi Suzuki, Hongxiong Liu, Kecheng Liu, Zhengwei Nie, Youguo Shi, Sheng Meng, Baiqing Lv, Hong Ding, Teruto Kanai, Jiro Itatani, Shik Shin, and Kozo Okazaki
Phys. Rev. Research 6, 043328 (2024) - Published 30 December, 2024
Time- and angle-resolved photoemission spectroscopy is used to explore the dynamic band structures in the kagome superconductor CsVSb. Laser excitation induces a rapid shift of the van Hove singularities toward the Fermi level, followed by decay accompanied by oscillations linked to a specific phonon mode. Remarkably, this phonon mode—typically observable only in the charge-density wave (CDW) phase—persists beyond the CDW transition, revealing the potential presence of fluctuating CDW. These findings highlight strong electron-phonon couplings in CsVSb and demonstrate optical control of van Hove singularities in this system.
Satoshi Morita, Yoshiaki Teranishi, and Seiji Miyashita
Phys. Rev. Research 6, 043329 (2024) - Published 30 December, 2024
Hila Katznelson and Saar Rahav
Phys. Rev. Research 6, 043330 (2024) - Published 30 December, 2024
A. Tichai, P. Arthuis, K. Hebeler, M. Heinz, J. Hoppe, T. Miyagi, A. Schwenk, and L. Zurek
Phys. Rev. Research 6, 043331 (2024) - Published 31 December, 2024
Armando Pezo, Jean-Marie George, and Henri Jaffrès
Phys. Rev. Research 6, 043332 (2024) - Published 31 December, 2024
Tobias Hangleiter, Pascal Cerfontaine, and Hendrik Bluhm
Phys. Rev. Research 6, 049001 (2024) - Published 16 October, 2024
Mauro Cirio, Neill Lambert, Pengfei Liang, Po-Chen Kuo, Yueh-Nan Chen, Paul Menczel, Ken Funo, and Franco Nori
Phys. Rev. Research 6, 049002 (2024) - Published 5 November, 2024
V. Ukleev, K. A. Pschenichnyi, O. Utesov, K. Karube, S. Mühlbauer, R. Cubitt, Y. Tokura, Y. Taguchi, J. S. White, and S. V. Grigoriev
Phys. Rev. Research 6, 049003 (2024) - Published 14 November, 2024