Yuki Sato and Kiyoshi Kanazawa
Phys. Rev. Research 5, 043131 (2023) - Published 8 November, 2023
An analysis of data from the Tokyo Stock Exchange provides the first quantitative evidence for the Lillo-Mike-Farmer model—a long-standing theory in economics.
Zachary G. Nicolaou, Guanyu Huo, Yihui Chen, Steven L. Brunton, and J. Nathan Kutz
Phys. Rev. Research 5, L042017 (2023) - Published 2 November, 2023
A new machine-learning framework enables the discovery of governing equations in pattern-forming systems parameterized by external driving conditions. The resulting data-driven models reveal effective nonlinear corrections to classical perturbation theory, enabling extrapolation including the prediction of bifurcations far from the conditions used in training.
Vladimir Zhdankin, Bart Ripperda, and Alexander A. Philippov
Phys. Rev. Research 5, 043023 (2023) - Published 9 October, 2023
This article uses magnetic Rayleigh-Taylor instability in relativistic collisionless plasma as an example of an astrophysical process for nonthermal particle acceleration, and uncover the onset of large-scale plumes formed by accumulation of small ones via particle-in-cell simulations. This is posed as a potential mechanism for flares.
Rainer Engelken, Fred Wolf, and L. F. Abbott
Phys. Rev. Research 5, 043044 (2023) - Published 16 October, 2023
The Lyapunov spectrum of recurrent neural networks is calculated and analytical approximations through random matrix theory are provided. The dependency of attractor dimensions and entropy rates on coupling strength and input fluctuations is identified and a point symmetry of the Lyapunov spectrum is revealed. A link is shown between Lyapunov exponents to error propagation and stability in trained recurrent networks for machine-learning applications.
Andre S. Sunahara, Matjaž Perc, and Haroldo V. Ribeiro
Phys. Rev. Research 5, 043203 (2023) - Published 5 December, 2023
Methods from time series analysis, dimensionality reduction, and network science are combined to show evidence for the natural emergence of six universal patterns of productivity in scientific careers: constant, u-shaped, decreasing, periodic, increasing, and canonical curves. Canonical curves are the most prevalent pattern, but contrary to expectations, productivity peaks occur much more frequently around midcareer rather than early.
O. T. Whaites, C. I. Ioannou, B. J. Pingault, G. L. van de Stolpe, T. H. Taminiau, and T. S. Monteiro
Phys. Rev. Research 5, 043291 (2023) - Published 26 December, 2023
Sequences of periodic microwave pulses are used to efficiently transfer polarization from an NV defect electronic spin in diamond to surrounding nuclei, at specific resonant periods. It’s theoretically and experimentally demonstrated that the presence of a “blocking spin,” a nuclear spin with similar precession frequency but stronger coupling, leads to expulsion of polarization resonances of other nuclear spins from the central resonant period region, affecting the efficiency of the polarization protocol.
Guram Mikaberidze, Arthur Plaud, and Raissa M. D'Souza
Phys. Rev. Research 5, L042013 (2023) - Published 19 October, 2023
Models of self-organized criticality can surprisingly produce dragon king failures—massive, self-amplifying cascading events. It is analytically demonstrated that dragon kings are created by the trade-off between driving impulse and dissipation rate.
Jose Ortiz-Tavarez, Ethan Stanifer, and Xiaoming Mao
Phys. Rev. Research 5, L042001 (2023) - Published 2 October, 2023
Graph theory is applied to analyze substructures of isostatic networks, revealing that marginally jammed packings are minimally isostatic and discovering design principles for stable yet reconfigurable metamaterials.
Pierre Suret, Martin Dufour, Giacomo Roberti, Gennady El, François Copie, and Stéphane Randoux
Phys. Rev. Research 5, L042002 (2023) - Published 2 October, 2023
A refraction phenomenon where an individual soliton undergoes a significant change in its effective velocity due to its interaction with an optical soliton gas is evidenced in an optical fiber experiment. The experimental findings corroborate the predictions derived from the kinetic theory of soliton gas.
Hui Zeng, Wenhui Duan, and Huaqing Huang
Phys. Rev. Research 5, L042003 (2023) - Published 3 October, 2023
A generalization of the nested Wilson loop formalism, which has been instrumental in studying topological quadrupole insulators, is presented. This formalism is extended to nonsymmorphic materials with higher-order topology. In three-dimensional topological Dirac semimetals, the generalized nested Berry phase derived from this formalism acts as a bulk topological indicator, determining the presence or absence of higher-order Fermi arcs. This reveals a direct correspondence between the bulk and the hinges.
Takeshi Mizushima and Masahiro Sato
Phys. Rev. Research 5, L042004 (2023) - Published 4 October, 2023
Vortex beams, light beams with a spiral-shaped wave front around their propagation axis, can generate a spiral Higgs wave in superconductors. The orbital angular momentum of light stimulates the phase mode to screen the longitudinal magnetic field of the vortex beam, which amplifies the intensity of third-harmonic generation mediated by the Higgs mode.
H. S. Xu and L. Jin
Phys. Rev. Research 5, L042005 (2023) - Published 4 October, 2023
A conservation law that is valid for all non-Hermitian scattering systems is discovered. Applying this conservation law uncovers that the energy-difference conservation is protected by the specific pseudo-Hermiticity.
Alkistis Zervou, Dmitry V. Efremov, and Joseph J. Betouras
Phys. Rev. Research 5, L042006 (2023) - Published 5 October, 2023
Under specific conditions, higher-order van Hove singularities can amplify instabilities in the charge or spin channel, resulting in quantum phases like spin-density waves. As a consequence, the critical temperature of a spin-density wave can be boosted by orders of magnitude, making the phase detectable in experiments.
Marcelo Janovitch, Matteo Brunelli, and Patrick P. Potts
Phys. Rev. Research 5, L042007 (2023) - Published 5 October, 2023
Identifying genuine quantum features requires a comparison with classical models. A key insight from the wave-particle duality in the study of out-of-equilibrium bosonic transport is employed by comparing a quantum heat engine with two classical counterparts, one based on waves and one on particles. The wave-particle duality is shown to be crucial to understand output power fluctuations.
Luca Barbiero, Josep Cabedo, Maciej Lewenstein, Leticia Tarruell, and Alessio Celi
Phys. Rev. Research 5, L042008 (2023) - Published 6 October, 2023
Ultracold atoms in a square flux ladder realize a frustrated quantum model without the need for explicit geometric frustration. Instances of frustrated quantum magnetism become readily accessible in ultracold atoms experiments.
Ethan Q. Simmons, Roshan Sajjad, Kimberlee Keithley, Hector Mas, Jeremy L. Tanlimco, Eber Nolasco-Martinez, Yifei Bai, Glenn H. Fredrickson, and David M. Weld
Phys. Rev. Research 5, L042009 (2023) - Published 10 October, 2023
This article uses experiments to compare the efficiency and power output of an engine based on a classic and a quantum degenerate fluid. The authors explore the performance of both systems and show that the quantum statistics produces a more efficient engine.
J. Lukas K. König, Kang Yang, Jan Carl Budich, and Emil J. Bergholtz
Phys. Rev. Research 5, L042010 (2023) - Published 11 October, 2023
A class of systems is presented in which a particle-antiparticle pair cannot annihilate each other after they have moved along a loop and instead form a new type of composite particle. This occurs in so-called non-Hermitian systems: classical metamaterials or “open” quantum systems that are coupled to the rest of the Universe. In two dimensions, their excitations are massless “particles” that can be created as a pair or annihilate each other pairwise. Each particle is associated with the mathematical structure of a knot in a rope. After moving one particle along a loop and bringing it near its former antiparticle, their knots are combined differently. The two can no longer annihilate pairwise and instead form a new particle corresponding to a more complicated knot. This shows that non-Hermitian particles in two dimensions remember their movement history.
Daniel Muñoz-Segovia, Paul Corbae, Dániel Varjas, Frances Hellman, Sinéad M. Griffin, and Adolfo G. Grushin
Phys. Rev. Research 5, L042011 (2023) - Published 12 October, 2023
An efficient method to identify topological phases in noncrystalline materials that can be directly implemented in density functional theory calculations is proposed. Its benchmarks on amorphous 2D bismuth allotropes predict the bilayer to be topological.
Alekhya Ghosh, Lewis Hill, Gian-Luca Oppo, and Pascal Del'Haye
Phys. Rev. Research 5, L042012 (2023) - Published 16 October, 2023
Optical symmetry breaking in two different arrangements of photonic dimer systems are studied. Multilevel symmetry breakings, oscillations, and chaos are observed in the systems.
Guram Mikaberidze, Arthur Plaud, and Raissa M. D'Souza
Phys. Rev. Research 5, L042013 (2023) - Published 19 October, 2023
Models of self-organized criticality can surprisingly produce dragon king failures—massive, self-amplifying cascading events. It is analytically demonstrated that dragon kings are created by the trade-off between driving impulse and dissipation rate.
Simone Benella, Mirko Stumpo, Tommaso Alberti, Oreste Pezzi, Emanuele Papini, Emiliya Yordanova, Francesco Valentini, and Giuseppe Consolini
Phys. Rev. Research 5, L042014 (2023) - Published 19 October, 2023
Solar wind plasma turbulence at subion scales can be envisioned as a stochastic process of the Langevin type. The dynamics predicted in the nondiffusive limit matches both local and statistical features observed experimentally, for example, power-law damping of fluctuations and linear scaling laws, thus suggesting the presence of an unstructured fluctuation field at subion scales.
Ofek Lauber Bonomo and Shlomi Reuveni
Phys. Rev. Research 5, L042015 (2023) - Published 19 October, 2023
Motivated by recent experiments, a stylized model for a random walk that interacts with its environment is developed. The model is used to show that even a limited ability of a tracer to push away obstacles that block its path will always lead to caging and thus to the loss of the percolation transition—a hallmark of random walks in disorder media.
Jinchen Zhao and Myung-Joong Hwang
Phys. Rev. Research 5, L042016 (2023) - Published 25 October, 2023
An anomalous superradiant phase transition induced by broken time-reversal symmetry is discovered and investigated in the Dicke lattice model. It features bounded and discontinuous fluctuation of the photon field at the critical point, as well as long-range frustration.
Zachary G. Nicolaou, Guanyu Huo, Yihui Chen, Steven L. Brunton, and J. Nathan Kutz
Phys. Rev. Research 5, L042017 (2023) - Published 2 November, 2023
A new machine-learning framework enables the discovery of governing equations in pattern-forming systems parameterized by external driving conditions. The resulting data-driven models reveal effective nonlinear corrections to classical perturbation theory, enabling extrapolation including the prediction of bifurcations far from the conditions used in training.
Xanthe H. Verbeek, Andrea Urru, and Nicola A. Spaldin
Phys. Rev. Research 5, L042018 (2023) - Published 3 November, 2023
calculations reveal electric-field-induced local magnetic moments in both CrO and isostructural FeO. The local responses in CrO add up to a net magnetoelectric effect, while in FeO the responses cancel out: an antimagnetoelectric effect. The responses are related to hidden order in the form of ferroically and antiferroically ordered magnetoelectric multipoles.
Shuntaro Takazawa, Duc-Anh Dao, Masaki Abe, Hideshi Uematsu, Nozomu Ishiguro, Taiki Hoshino, Hieu Chi Dam, and Yukio Takahashi
Phys. Rev. Research 5, L042019 (2023) - Published 3 November, 2023
Two well-known measurement methods use coherent x rays: x-ray photon correlation spectroscopy (XPCS) and coherent x-ray diffraction imaging (CXDI). An approach to analyze particle motion in heterogeneous solutions over a wide spatiotemporal scale by combining XPCS and dynamic CXDI using a data-driven approach is proposed and demonstrated.
Caixing Fu, Min Yang, and Zhi Hong Hang
Phys. Rev. Research 5, L042020 (2023) - Published 7 November, 2023
Based on the causality principle, a systematic design methodology of side-loaded resonators for symmetrical broadband acoustic coherent perfect absorption in ducts or ventilation systems is presented. This technology is beneficial for the noise treatment of a coaxial loudspeaker system.
Ryan Curry, Joel E. Lynn, Kevin E. Schmidt, and Alexandros Gezerlis
Phys. Rev. Research 5, L042021 (2023) - Published 8 November, 2023
A technique that allows one to fuse nonperturbative many-body calculations and perturbative modern nuclear forces is reported on. The method was used to test some of the underlying assumptions of nuclear chiral forces and led to evidence that, at least in some regimes, they are violated.
Luca Rüegg, Gaurav Chaudhary, and Robert-Jan Slager
Phys. Rev. Research 5, L042022 (2023) - Published 8 November, 2023
It is known that a nearly balanced quantum Hall bilayer at = 1 goes from two decoupled composite Fermi liquids to a strongly coupled exciton condensate phase as the interlayer distance is decreased. It’s shown that when the bilayer is treated as one layer of composite electrons and one layer of composite holes, the fluctuations in the gauge field around the mean-field solution mediate an attractive interlayer interaction, which leads to stable BCS pairing between composite electrons and composite holes in the -wave channel. This composite exciton may be the precursor to the exciton condensate phase.
Kathleen R. Mullin, Daniel W. Laorenza, Danna E. Freedman, and James M. Rondinelli
Phys. Rev. Research 5, L042023 (2023) - Published 8 November, 2023
Molecular color centers are a promising platform for quantum sensors of magnetic fields. A model for using these molecules to understand spatially dependent magnetic fields is presented and used to predict magnetic fields from a two-dimensional ferromagnet.
Chandrashekhar Gaikwad, Daria Kowsari, Weijian Chen, and Kater W. Murch
Phys. Rev. Research 5, L042024 (2023) - Published 13 November, 2023
Parity-time symmetric systems can be created by coupling two modes with respective gain and loss, forming a dimer. Quantum limited amplification and squeezing of quadrature modes of the electromagnetic field allows the exploration of the parity-time symmetry breaking transition in a dissipation-free setting.
Adrien Devolder, Paul Brumer, and Timur V. Tscherbul
Phys. Rev. Research 5, L042025 (2023) - Published 14 November, 2023
The fundamental challenge of controlling binary collisions is addressed. Advanced scattering theory is employed to demonstrate that partial-wave phase locking (PWPL) effectively overcomes the challenges posed by random partial-wave contributions in ion-atom collisions (Sr-Rb), enabling robust coherent quantum control even beyond the ultracold regime.
Hideki Ozawa, Ryuta Yamamoto, and Takeshi Fukuhara
Phys. Rev. Research 5, L042026 (2023) - Published 21 November, 2023
Relaxation and excitation from unfrustrated to frustrated phases in the classical XY model are investigated using a Bose gas in periodically driven optical triangular lattices. A fast quench leads to the formation of chiral-mode domains, which is observed by high-resolution imaging.
Yosuke Nakata, Toshihiro Nakanishi, Ryo Takahashi, Fumiaki Miyamaru, and Shuichi Murakami
Phys. Rev. Research 5, L042027 (2023) - Published 20 November, 2023
Surface plasmon polaritons, localized waves at metal-dielectric interfaces, play a key role in nanophotonics, enabling the miniaturization of optical devices. This study reveals the hidden symmetry for interfaces and identifies the exceptional origin of surface plasmon polaritons.
Huimei Liu, Moritz M. Hirschmann, George A. Sawatzky, Giniyat Khaliullin, and Andreas P. Schnyder
Phys. Rev. Research 5, L042028 (2023) - Published 27 November, 2023
An insulator-to-metal phase transition in rare-earth mixed-valence compounds is shown to be driven by magnetic correlations, which are enhanced under external pressure. Condensation of the spin exciton mode gives rise to a magnetic metal with distinct band topology and surface states. It is shown that magnetic instability is also triggered by lowering the cubic symmetry, thus explaining the surface magnetism in SmB.
Yu-Hung Kuan, Shin-Yu Lee, Siang-Wei Shao, Wu-Cheng Chiang, I-Kang Liu, Julius Ruseckas, Gediminas Juzeliūnas, Yu-Ju Lin, and Wen-Te Liao
Phys. Rev. Research 5, L042029 (2023) - Published 27 November, 2023
The mechanism of electromagnetically induced transparency to generate a synthetic magnetic field for neutral particles termed dark-state polaritons (DSP) is invoked. The ability to create Landau levels and robust edge states in DSP is demonstrated, thereby simulating phenomena observed in condensed matter physics.
Cai Dieball, Gerrit Wellecke, and Aljaž Godec
Phys. Rev. Research 5, L042030 (2023) - Published 27 November, 2023
When a driven system relaxes to the temperature of the surroundings upon a temperature quench, heating is faster than cooling. Moreover, rotational motions emerge that occur in opposite directions during heating and cooling.
Christian Carisch, Alessandro Romito, and Oded Zilberberg
Phys. Rev. Research 5, L042031 (2023) - Published 29 November, 2023
The impact of measurements on the entanglement of mixed states and stochastic pure-state trajectories is compared. Whereas at long times the response is different, at intermediate times the two descriptions respond similarly in terms of a coherence length whose dependence on the measurement strength is explained by a cascade of underdamped-to-overdamped transitions.
Ziqian Wang, Xiao-Xiao Zhang, Yuki Shiomi, Taka-hisa Arima, Naoto Nagaosa, Yoshinori Tokura, and Naoki Ogawa
Phys. Rev. Research 5, L042032 (2023) - Published 30 November, 2023
A substantial interaction is discovered between two correlated quasiparticles, excitons and magnons, within a van der Waals layered antiferromagnet. Symmetry analysis based on nonlinear optical spectroscopy reveals the unconventional splitting of magnons induced by the excitonic perturbation.
Haichen Jia, Bowen Ma, Rui Leonard Luo, and Gang Chen
Phys. Rev. Research 5, L042033 (2023) - Published 4 December, 2023
In the MoTe/WSe moiré heterobilayer, the itinerant ferromagnetism can be induced from the double exchange mechanism for the itinerant holes on the WSe layer and the local moments on the MoTe layer. Together with the antiferromagnetic exchange on the MoTe layer, the itinerant ferromagnetism generates the scalar spin chirality, leading to the topological Hall effect for the itinerant holes in the presence of the noncollinear spin configurations.
R. Tommasini, D. T. Casey, D. Clark, A. Do, K. L. Baker, O. L. Landen, V. A. Smalyuk, C. Weber, B. Bachmann, E. Hartouni, S. Kerr, C. Krauland, E. V. Marley, M. Millot, J. Milovich, R. C. Nora, A. E. Pak, D. Schlossberg, B. Woodworth, T. M. Briggs, D. M. Holunga, A. Nikroo, and M. Stadermann
Phys. Rev. Research 5, L042034 (2023) - Published 7 December, 2023
High fuel compression has been successfully achieved through implosions utilizing high-density carbon ablators at the National Ignition Facility. The new drive and ablator profile have resulted in a significant improvement in the measured down-scattered neutron fraction, which is a metric of compression, compared to previously established designs. This enhancement is attributed to increased stability and reduced adiabat.
P. Sesin, A. S. Kuznetsov, G. Rozas, S. Anguiano, A. E. Bruchhausen, A. Lemaître, K. Biermann, P. V. Santos, and A. Fainstein
Phys. Rev. Research 5, L042035 (2023) - Published 7 December, 2023
Cavity optomechanics involving exciton-polaritons leads to a strongly enhanced optomechanical coupling by adding to the standard radiation-pressure mechanism a resonantly enhanced deformation potential interaction. Resonant Brillouin scattering experiments and photoluminescence with electrically injected GHz bulk acoustic waves are reported to demonstrate that single-particle resonant optomechanical couplings with GHz vibrations can reach record values in the tens of MHz range. Interestingly, the opening of the Rabi gap in the exciton-photon strong-coupling regime allows full access to resonance, protecting against dephasing induced by the exciton inhomogeneous broadening.
Felix Karbstein, Simon Stützer, Holger Gies, and Alexander Szameit
Phys. Rev. Research 5, L042036 (2023) - Published 8 December, 2023
The equation of motion of the large- Gross-Neveu model in 1+1 dimensions is implemented in photonic waveguide arrays, and one of its paradigmatic multifermion bound-state solutions is studied in an optical experiment. The experimental results are found to be in good agreement with theoretical predictions.
Rebecca N. Poon, Timothy A. Westwood, Hannah Laeverenz-Schlogelhofer, Emelie Brodrick, Jamie Craggs, Eric E. Keaveny, Gáspár Jékely, and Kirsty Y. Wan
Phys. Rev. Research 5, L042037 (2023) - Published 11 December, 2023
Many species of marine invertebrates have a motile stage. Reef corals spawn once a year to release many ciliated larvae, which swim vigorously before finding a suitable location to settle. The cilia exhibit diaplectic metachronal waves, which is a natural solution to coordinating dense arrays of cilia for efficient fluid pumping.
B. Gábor, D. Nagy, A. Vukics, and P. Domokos
Phys. Rev. Research 5, L042038 (2023) - Published 11 December, 2023
A dissipative phase transition is found in a system of Λ atoms coupled to a bichromatic optical cavity. In the thermodynamic limit, the steady states are pure hyperfine ground states in the atomic segment.
Diana Méndez Avalos, Kensuke Gallock-Yoshimura, Laura J. Henderson, and Robert B. Mann
Phys. Rev. Research 5, L042039 (2023) - Published 15 December, 2023
It is shown nonperturbatively that if three initially separable two-level detectors each interact with a quantum scalar field at a single instant of time, then the final state of the detectors can contain genuine tripartite entanglement of the GHZ type between the detectors. This result holds for general spatial configurations of the detectors over a broad range of their spatial separations and intervals between their couplings.
Lei Du, Lingzhen Guo, Yan Zhang, and Anton Frisk Kockum
Phys. Rev. Research 5, L042040 (2023) - Published 15 December, 2023
By nonlocally coupling quantum emitters, making them “giant,” to a non-Hermitian structured bath where Bloch’s theorem breaks down and the non-Hermitian skin effect appears, unconventional light-matter interactions can be designed and harnessed. It’s shown that giant emitters in such a bath can undergo excitation amplification or attenuation and interact with each other in a nonreciprocal manner without decohering.
Dianqiang Su, Yuan Jiang, Silvia Cardenas-Lopez, Ana Asenjo-Garcia, Pablo Solano, Luis A. Orozco, and Yanting Zhao
Phys. Rev. Research 5, L042041 (2023) - Published 18 December, 2023
An experimental study shows the emergence of oscillations in the temporal behavior of a pulse in the single-photon limit as it propagates in a nanofiber waveguide through a resonant atomic medium.
Rui Cao, Jinsen Han, Jianmin Yuan, Xiaopeng Li, and Yongqiang Li
Phys. Rev. Research 5, L042042 (2023) - Published 22 December, 2023
An orbital texture, an analog of the Skyrmion lattice, is found for bosonic atoms loaded in an optical triangular lattice. The orbital Skyrmion arises from geometric frustration effects in the triangular lattice, unlike conventional scenarios where spin-orbital interactions are required.
J.-Z. Zhuang, Y.-K. Wu, and L.-M. Duan
Phys. Rev. Research 5, L042043 (2023) - Published 26 December, 2023
A rich set of dynamical phase transitions is discovered in the information flow in many-body systems governed by random quantum circuits.
Amr Osman, Jorge Fernández-Pendás, Christopher Warren, Sandoko Kosen, Marco Scigliuzzo, Anton Frisk Kockum, Giovanna Tancredi, Anita Fadavi Roudsari, and Jonas Bylander
Phys. Rev. Research 5, 043001 (2023) - Published 2 October, 2023
Irtaza Khalid, Carrie A. Weidner, Edmond A. Jonckheere, Sophie G. Schirmer, and Frank C. Langbein
Phys. Rev. Research 5, 043002 (2023) - Published 2 October, 2023
Mustafa Alshaqaq, Christopher Sugino, and Alper Erturk
Phys. Rev. Research 5, 043003 (2023) - Published 2 October, 2023
Xing-Shuo Xu, Xiang-Fa Zhou, Guang-Can Guo, and Zheng-Wei Zhou
Phys. Rev. Research 5, 043004 (2023) - Published 3 October, 2023
Yutaro Enomoto, Keitaro Anai, Kenta Udagawa, and Shuntaro Takeda
Phys. Rev. Research 5, 043005 (2023) - Published 3 October, 2023
David Beers, Despoina Goniotaki, Diane P. Hanger, Alain Goriely, and Heather A. Harrington
Phys. Rev. Research 5, 043006 (2023) - Published 4 October, 2023
The TMD is a morphology descriptor for neurons which, when applied to path length, is equivalent to extended persistent homology and can be used to characterize differences between healthy and diseased mouse neurons.
D. Valentinis, G. A. Inkof, and J. Schmalian
Phys. Rev. Research 5, 043007 (2023) - Published 4 October, 2023
Adam J. McRoberts, Hongzheng Zhao, Roderich Moessner, and Marin Bukov
Phys. Rev. Research 5, 043008 (2023) - Published 4 October, 2023
Shuan Wang, Chunhua Zeng, Guimei Zhu, Hua Wang, and Baowen Li
Phys. Rev. Research 5, 043009 (2023) - Published 4 October, 2023
Mingyuan Sun, Chang Liu, and Zhe-Yu Shi
Phys. Rev. Research 5, 043010 (2023) - Published 4 October, 2023
Rui Lou, Oleksandr Suvorov, Hans-Joachim Grafe, Andrii Kuibarov, Maxim Krivenkov, Oliver Rader, Bernd Büchner, Sergey Borisenko, and Alexander Fedorov
Phys. Rev. Research 5, 043011 (2023) - Published 4 October, 2023
Bradley J. Fugetta, Zhijie Chen, Dhritiman Bhattacharya, Kun Yue, Kai Liu, Amy Y. Liu, and Gen Yin
Phys. Rev. Research 5, 043012 (2023) - Published 4 October, 2023
Sreenath K. Manikandan
Phys. Rev. Research 5, 043013 (2023) - Published 5 October, 2023
Bingsheng Tu, Ran Si, Yang Shen, Jiarong Wang, Baoren Wei, Chongyang Chen, Ke Yao, and Yaming Zou
Phys. Rev. Research 5, 043014 (2023) - Published 5 October, 2023
Joanna Schneider, Christopher A. Browne, Malcolm Slutzky, Cecilia A. Quirk, Daniel B. Amchin, and Sujit S. Datta
Phys. Rev. Research 5, 043015 (2023) - Published 5 October, 2023
Georgios M. Koutentakis, Areg Ghazaryan, and Mikhail Lemeshko
Phys. Rev. Research 5, 043016 (2023) - Published 5 October, 2023
Edvin Olofsson and Jan Marcus Dahlström
Phys. Rev. Research 5, 043017 (2023) - Published 5 October, 2023
Raymond A. Shaw, Subin Thomas, Prasanth Prabhakaran, Will Cantrell, Mikhail Ovchinnikov, and Fan Yang
Phys. Rev. Research 5, 043018 (2023) - Published 6 October, 2023
Federica Maria Surace and Olexei Motrunich
Phys. Rev. Research 5, 043019 (2023) - Published 9 October, 2023
Miklós Antal Werner, Cătălin Paşcu Moca, Márton Kormos, Örs Legeza, Balázs Dóra, and Gergely Zaránd
Phys. Rev. Research 5, 043020 (2023) - Published 9 October, 2023
Wolfgang Himmler, Ralf Fischer, Michael Barth, Jacob Fuchs, Dmitriy A. Kozlov, Nikolay N. Mikhailov, Sergey A. Dvoretsky, Christoph Strunk, Cosimo Gorini, Klaus Richter, and Dieter Weiss
Phys. Rev. Research 5, 043021 (2023) - Published 9 October, 2023
Vladimir Zhdankin, Bart Ripperda, and Alexander A. Philippov
Phys. Rev. Research 5, 043023 (2023) - Published 9 October, 2023
This article uses magnetic Rayleigh-Taylor instability in relativistic collisionless plasma as an example of an astrophysical process for nonthermal particle acceleration, and uncover the onset of large-scale plumes formed by accumulation of small ones via particle-in-cell simulations. This is posed as a potential mechanism for flares.
Weizhong Zou, Grace Tan, Mike Weaver, Peter Koenig, and Ronald G. Larson
Phys. Rev. Research 5, 043024 (2023) - Published 9 October, 2023
Chiara Esposito, Francesco Di Colandrea, Francesco Hoch, Gonzalo Carvacho, Filippo Cardano, Nicolò Spagnolo, Lorenzo Marrucci, and Fabio Sciarrino
Phys. Rev. Research 5, 043025 (2023) - Published 10 October, 2023
Sachith E. Dissanayake, Masaaki Matsuda, Kazuyoshi Yoshimi, Shusuke Kasamatsu, Feng Ye, Songxue Chi, William Steinhardt, Gilberto Fabbris, Sara Haravifard, Jinguang Cheng, Jiaqiang Yan, Jun Gouchi, and Yoshiya Uwatoko
Phys. Rev. Research 5, 043026 (2023) - Published 10 October, 2023
Dian Peng (彭典) and Jean Marcel Ngoko Djiokap
Phys. Rev. Research 5, 043027 (2023) - Published 10 October, 2023
Weihua Zhang and Barbara Dietz
Phys. Rev. Research 5, 043028 (2023) - Published 10 October, 2023
Bong Gyu Shin, Ji-Hoon Park, Jing Kong, and Soon Jung Jung
Phys. Rev. Research 5, 043029 (2023) - Published 10 October, 2023
Oliver Alexander, Jonathan C. T. Barnard, Esben W. Larsen, Timur Avni, Sebastian Jarosch, Clément Ferchaud, Andrew Gregory, Susan Parker, Gediminas Galinis, Alexandra Tofful, Douglas Garratt, Mary R. Matthews, and Jonathan P. Marangos
Phys. Rev. Research 5, 043030 (2023) - Published 10 October, 2023
Yi Li, Timothy Draher, Andrew H. Comstock, Yuzan Xiong, Md Azimul Haque, Elham Easy, Jiangchao Qian, Tomas Polakovic, John E. Pearson, Ralu Divan, Jian-Min Zuo, Xian Zhang, Ulrich Welp, Wai-Kwong Kwok, Axel Hoffmann, Joseph M. Luther, Matthew C. Beard, Dali Sun, Wei Zhang, and Valentine Novosad
Phys. Rev. Research 5, 043031 (2023) - Published 10 October, 2023
Luca Cocconi, Henry Alston, and Thibault Bertrand
Phys. Rev. Research 5, 043032 (2023) - Published 11 October, 2023
Boyu Zhou, Boulat A. Bash, Saikat Guha, and Christos N. Gagatsos
Phys. Rev. Research 5, 043033 (2023) - Published 11 October, 2023
Bin Liu, Yang Li, Bin Yang, Xiaopeng Shen, Yuting Yang, Zhi Hong Hang, and Motohiko Ezawa
Phys. Rev. Research 5, 043034 (2023) - Published 11 October, 2023
Refik Mansuroglu, Felix Fischer, and Michael J. Hartmann
Phys. Rev. Research 5, 043035 (2023) - Published 11 October, 2023
Yan-Li Zhou, Xiao-Die Yu, Chun-Wang Wu, Xie-Qian Li, Jie Zhang, Weibin Li, and Ping-Xing Chen
Phys. Rev. Research 5, 043036 (2023) - Published 11 October, 2023
Seokho Jeong, Minhyuk Kim, Minki Hhan, JuYoung Park, and Jaewook Ahn
Phys. Rev. Research 5, 043037 (2023) - Published 12 October, 2023
Maria Arazo, Albert Gallemí, Montserrat Guilleumas, Ricardo Mayol, and Luis Santos
Phys. Rev. Research 5, 043038 (2023) - Published 12 October, 2023
J. M. Becker, G. M. Koutentakis, and P. Schmelcher
Phys. Rev. Research 5, 043039 (2023) - Published 12 October, 2023
Peter Reimann, Patrick Vorndamme, and Jürgen Schnack
Phys. Rev. Research 5, 043040 (2023) - Published 12 October, 2023
Gonzalo Manzano and Rosa López
Phys. Rev. Research 5, 043041 (2023) - Published 12 October, 2023
Vijay Pal Singh, Luigi Amico, and Ludwig Mathey
Phys. Rev. Research 5, 043042 (2023) - Published 13 October, 2023
Marcus Stålhammar and Cristiane Morais Smith
Phys. Rev. Research 5, 043043 (2023) - Published 13 October, 2023
Rainer Engelken, Fred Wolf, and L. F. Abbott
Phys. Rev. Research 5, 043044 (2023) - Published 16 October, 2023
The Lyapunov spectrum of recurrent neural networks is calculated and analytical approximations through random matrix theory are provided. The dependency of attractor dimensions and entropy rates on coupling strength and input fluctuations is identified and a point symmetry of the Lyapunov spectrum is revealed. A link is shown between Lyapunov exponents to error propagation and stability in trained recurrent networks for machine-learning applications.
Hannes Weisbrich, Raffael L. Klees, Oded Zilberberg, and Wolfgang Belzig
Phys. Rev. Research 5, 043045 (2023) - Published 16 October, 2023
N. Cavanagh, K. Fleck, M. J. V. Streeter, E. Gerstmayr, L. T. Dickson, C. Ballage, R. Cadas, L. Calvin, S. Dobosz Dufrénoy, I. Moulanier, L. Romagnani, O. Vasilovici, A. Whitehead, A. Specka, B. Cros, and G. Sarri
Phys. Rev. Research 5, 043046 (2023) - Published 16 October, 2023
Hirofumi Nishi, Koki Hamada, Yusuke Nishiya, Taichi Kosugi, and Yu-ichiro Matsushita
Phys. Rev. Research 5, 043048 (2023) - Published 17 October, 2023
Guo-Jun Zhu, Yi-Bin Fang, Zhi-Guo Tao, Ji-Hui Yang, and Xin-Gao Gong
Phys. Rev. Research 5, 043049 (2023) - Published 17 October, 2023
Shao-Wen Wei, Yu-Peng Zhang, Yu-Xiao Liu, and Robert B. Mann
Phys. Rev. Research 5, 043050 (2023) - Published 17 October, 2023
Matthias G. Krauss, Christiane P. Koch, and Daniel M. Reich
Phys. Rev. Research 5, 043051 (2023) - Published 17 October, 2023
Oliver Busch, Ingrid Mertig, and Börge Göbel
Phys. Rev. Research 5, 043052 (2023) - Published 17 October, 2023
Qingtian Miao, Jayakrishnan M. P. Nair, and Girish S. Agarwal
Phys. Rev. Research 5, 043053 (2023) - Published 17 October, 2023
Tim Weaving, Alexis Ralli, William M. Kirby, Peter J. Love, Sauro Succi, and Peter V. Coveney
Phys. Rev. Research 5, 043054 (2023) - Published 17 October, 2023
Gabriele De Luca and Manfred Fiebig
Phys. Rev. Research 5, 043055 (2023) - Published 17 October, 2023
Filip Rozpędek, Kaushik P. Seshadreesan, Paul Polakos, Liang Jiang, and Saikat Guha
Phys. Rev. Research 5, 043056 (2023) - Published 18 October, 2023
Chan Roh, Young-Do Yoon, Jiyong Park, and Young-Sik Ra
Phys. Rev. Research 5, 043057 (2023) - Published 18 October, 2023
J. M. P. Carmelo, P. D. Sacramento, T. Stauber, and D. K. Campbell
Phys. Rev. Research 5, 043058 (2023) - Published 18 October, 2023
Sébastien Designolle, Gabriele Iommazzo, Mathieu Besançon, Sebastian Knebel, Patrick Gelß, and Sebastian Pokutta
Phys. Rev. Research 5, 043059 (2023) - Published 18 October, 2023
S. Depierreux, D. Pesme, R. Wrobel, D. T. Michel, P.-E. Masson-Laborde, G. Riazuelo, E. Alozy, N. Borisenko, A. Orekhov, M. Casanova, A. Casner, M. Grech, A. Heron, S. Huller, P. Loiseau, C. Meyer, P. Nicolaï, C. Riconda, V. Tikhonchuk, and C. Labaune
Phys. Rev. Research 5, 043060 (2023) - Published 19 October, 2023
Satoshi Morita, Hyun-Yong Lee, Kedar Damle, and Naoki Kawashima
Phys. Rev. Research 5, 043061 (2023) - Published 19 October, 2023
Francesco Vercesi, Quentin Fontaine, Sylvain Ravets, Jacqueline Bloch, Maxime Richard, Léonie Canet, and Anna Minguzzi
Phys. Rev. Research 5, 043062 (2023) - Published 19 October, 2023
Emilio N. M. Cirillo, Matteo Colangeli, Martin Kröger, and Lamberto Rondoni
Phys. Rev. Research 5, 043063 (2023) - Published 19 October, 2023
Jia-Xiang Li, Song Wu, Li-Li Hao, Qun-Li Lei, and Yu-Qiang Ma
Phys. Rev. Research 5, 043064 (2023) - Published 19 October, 2023
Andreas A. Buchheit, Torsten Keßler, Peter K. Schuhmacher, and Benedikt Fauseweh
Phys. Rev. Research 5, 043065 (2023) - Published 20 October, 2023
Ruicheng Bao, Zhiyu Cao, Jiming Zheng, and Zhonghuai Hou
Phys. Rev. Research 5, 043066 (2023) - Published 20 October, 2023
Fernando S. Filho, Gustavo A. L. Forão, Daniel M. Busiello, B. Cleuren, and Carlos E. Fiore
Phys. Rev. Research 5, 043067 (2023) - Published 20 October, 2023
Sudeep Adhikari and K. S. D. Beach
Phys. Rev. Research 5, 043068 (2023) - Published 20 October, 2023
Yuchen Guo, Jian-Hao Zhang, Zhen Bi, and Shuo Yang
Phys. Rev. Research 5, 043069 (2023) - Published 20 October, 2023
Qi Sun, Claire E. Dickerson, Jinyu Dai, Isaac M. Pope, Lan Cheng, Daniel Neuhauser, Anastassia N. Alexandrova, Debayan Mitra, and Tanya Zelevinsky
Phys. Rev. Research 5, 043070 (2023) - Published 20 October, 2023
Maryam Khanahmadi, Mads Middelhede Lund, Klaus Mølmer, and Göran Johansson
Phys. Rev. Research 5, 043071 (2023) - Published 23 October, 2023
Matthieu Sarkis, Alessio Fallani, and Alexandre Tkatchenko
Phys. Rev. Research 5, 043072 (2023) - Published 23 October, 2023
Yu-Min Hu and Zhong Wang
Phys. Rev. Research 5, 043073 (2023) - Published 23 October, 2023
N. Sivadas, Bobby G. Sumpter, and P. Ganesh
Phys. Rev. Research 5, 043074 (2023) - Published 23 October, 2023
Thomas Nussle, Stam Nicolis, and Joseph Barker
Phys. Rev. Research 5, 043075 (2023) - Published 23 October, 2023
Hiroshi Yamaguchi, Daiki Hatanaka, and Motoki Asano
Phys. Rev. Research 5, 043076 (2023) - Published 23 October, 2023
Daniel Kazenwadel, Noel Neathery, Saurav Prakash, Ariando Ariando, and Peter Baum
Phys. Rev. Research 5, 043077 (2023) - Published 23 October, 2023
Lukas Haller, Wen-Tao Xu, Yu-Jie Liu, and Frank Pollmann
Phys. Rev. Research 5, 043078 (2023) - Published 23 October, 2023
Fedor K. Popov and Grigory Tarnopolsky
Phys. Rev. Research 5, 043079 (2023) - Published 24 October, 2023
H. A. J. Middleton-Spencer, A. D. G. Orozco, L. Galantucci, M. Moreno, N. G. Parker, L. A. Machado, V. S. Bagnato, and C. F. Barenghi
Phys. Rev. Research 5, 043081 (2023) - Published 24 October, 2023
Raúl Arias, Jan de Boer, Giuseppe Di Giulio, Esko Keski-Vakkuri, and Erik Tonni
Phys. Rev. Research 5, 043082 (2023) - Published 24 October, 2023
Fabien Brieuc, Christoph Schran, and Dominik Marx
Phys. Rev. Research 5, 043083 (2023) - Published 26 October, 2023
Ziyan Zhu, Marios Mattheakis, Weiwei Pan, and Efthimios Kaxiras
Phys. Rev. Research 5, 043084 (2023) - Published 26 October, 2023
Chia-Hao Chang, Chia-Jung Chang, Nian-Jhu Wu, Yonggun Jun, and Cheng-Hung Chang
Phys. Rev. Research 5, 043085 (2023) - Published 26 October, 2023
Robert C. Bird, C. Ruth Le Sueur, and Jeremy M. Hutson
Phys. Rev. Research 5, 043086 (2023) - Published 26 October, 2023
L. I. Reascos, Bruno Murta, E. F. Galvão, and J. Fernández-Rossier
Phys. Rev. Research 5, 043087 (2023) - Published 26 October, 2023
Lev V. Ginzburg, Yuze Wu, Marc P. Röösli, Pedro Rosso Gomez, Rebekka Garreis, Chuyao Tong, Veronika Stará, Carolin Gold, Khachatur Nazaryan, Serhii Kryhin, Hiske Overweg, Christian Reichl, Matthias Berl, Takashi Taniguchi, Kenji Watanabe, Werner Wegscheider, Thomas Ihn, and Klaus Ensslin
Phys. Rev. Research 5, 043088 (2023) - Published 26 October, 2023
Cheng Chen, Xiang Chen, Weichen Tang, Zhenglu Li, Siqi Wang, Shuhan Ding, Zhibo Kang, Chris Jozwiak, Aaron Bostwick, Eli Rotenberg, Makoto Hashimoto, Donghui Lu, Jacob P. C. Ruff, Steven G. Louie, Robert J. Birgeneau, Yulin Chen, Yao Wang, and Yu He
Phys. Rev. Research 5, 043089 (2023) - Published 26 October, 2023
Chi-Ting Ho and Daw-Wei Wang
Phys. Rev. Research 5, 043090 (2023) - Published 26 October, 2023
Ievgen I. Arkhipov, Adam Miranowicz, Franco Nori, Şahin K. Özdemir, and Fabrizio Minganti
Phys. Rev. Research 5, 043092 (2023) - Published 26 October, 2023
Liyang Qiu, Haidong Yuan, and Saijun Wu
Phys. Rev. Research 5, 043094 (2023) - Published 27 October, 2023
Roberto Stassi, Mauro Cirio, Ken Funo, Jorge Puebla, Neill Lambert, and Franco Nori
Phys. Rev. Research 5, 043095 (2023) - Published 27 October, 2023
Andrew Killeen, Benjamin Partridge, Thibault Bertrand, and Chiu Fan Lee
Phys. Rev. Research 5, 043096 (2023) - Published 27 October, 2023
Irma Avdic, LeeAnn M. Sager-Smith, Indranil Ghosh, Olivia C. Wedig, Jacob S. Higgins, Gregory S. Engel, and David A. Mazziotti
Phys. Rev. Research 5, 043097 (2023) - Published 30 October, 2023
Anantha Rao, Stephen Carr, Charles Snider, D. E. Feldman, Chandrasekhar Ramanathan, and V. F. Mitrović
Phys. Rev. Research 5, 043098 (2023) - Published 30 October, 2023
Shahar Silberstein and Rotem Arnon-Friedman
Phys. Rev. Research 5, 043099 (2023) - Published 30 October, 2023
Xiaomeng Liu, Antonios Pelekanidis, Mengqi Du, Fengling Zhang, Kjeld S. E. Eikema, and Stefan Witte
Phys. Rev. Research 5, 043100 (2023) - Published 31 October, 2023
Elena Garuccio, Margherita Lalli, and Diego Garlaschelli
Phys. Rev. Research 5, 043101 (2023) - Published 31 October, 2023
Shion Yamashika, Daichi Kagamihara, Ryosuke Yoshii, and Shunji Tsuchiya
Phys. Rev. Research 5, 043102 (2023) - Published 1 November, 2023
Eric Kleinherbers, Hendrik Mannel, Jens Kerski, Martin Geller, Axel Lorke, and Jürgen König
Phys. Rev. Research 5, 043103 (2023) - Published 1 November, 2023
Marcela Herrera, John H. Reina, Irene D'Amico, and Roberto M. Serra
Phys. Rev. Research 5, 043104 (2023) - Published 2 November, 2023
Tommaso Micallo, Carl Lehmann, and Jan Carl Budich
Phys. Rev. Research 5, 043105 (2023) - Published 2 November, 2023
Marko Ristić, Richard O'Shaughnessy, V. Ashley Villar, Ryan T. Wollaeger, Oleg Korobkin, Chris L. Fryer, Christopher J. Fontes, and Atul Kedia
Phys. Rev. Research 5, 043106 (2023) - Published 2 November, 2023
Min Zou, Kang Yang, Pan Zhang, Wenwen Cui, Jian Hao, Jingming Shi, and Yinwei Li
Phys. Rev. Research 5, 043107 (2023) - Published 2 November, 2023
Yohei Fuji and Akira Furusaki
Phys. Rev. Research 5, 043108 (2023) - Published 3 November, 2023
Z. Li, T. Chirac, J. Tranchida, V. Garcia, S. Fusil, V. Jacques, J.-Y. Chauleau, and M. Viret
Phys. Rev. Research 5, 043109 (2023) - Published 3 November, 2023
Matthias Gillig, Xiaochen Hong, Christoph Wellm, Vladislav Kataev, Weiliang Yao, Yuan Li, Bernd Büchner, and Christian Hess
Phys. Rev. Research 5, 043110 (2023) - Published 3 November, 2023
Zhi-Feng Zhang, Qing-Rui Wang, and Peng Ye
Phys. Rev. Research 5, 043111 (2023) - Published 3 November, 2023
Tomilola M. Obadiya and Daniel M. Sussman
Phys. Rev. Research 5, 043112 (2023) - Published 3 November, 2023
Nishanth Baskaran, Abhishek Singh Rawat, Akshaya Jayashankar, Dibyajyoti Chakravarti, K. Sugisaki, Shibdas Roy, Sudhindu Bikash Mandal, D. Mukherjee, and V. S. Prasannaa
Phys. Rev. Research 5, 043113 (2023) - Published 3 November, 2023
Xuanhao Yuan, Yiming Zhang, Jian Hao, Meiling Xu, and Yinwei Li
Phys. Rev. Research 5, 043114 (2023) - Published 3 November, 2023
Juan M. Randazzo, Carlos Marante, Siddhartha Chattopadhyay, Barry I. Schneider, Jeppe Olsen, and Luca Argenti
Phys. Rev. Research 5, 043115 (2023) - Published 3 November, 2023
Shaoyu Lu, Dong Huang, Chen Liang, and Yan Feng
Phys. Rev. Research 5, 043116 (2023) - Published 3 November, 2023
Lucas Leclerc, Luis Ortiz-Gutiérrez, Sebastián Grijalva, Boris Albrecht, Julia R. K. Cline, Vincent E. Elfving, Adrien Signoles, Loïc Henriet, Gianni Del Bimbo, Usman Ayub Sheikh, Maitree Shah, Luc Andrea, Faysal Ishtiaq, Andoni Duarte, Sam Mugel, Irene Cáceres, Michel Kurek, Roman Orús, Achraf Seddik, Oumaima Hammami, Hacene Isselnane, and Didier M'tamon
Phys. Rev. Research 5, 043117 (2023) - Published 6 November, 2023
Jonathan B. Curtis, Marios H. Michael, and Eugene Demler
Phys. Rev. Research 5, 043118 (2023) - Published 6 November, 2023
Wenru Fan, Wei Qi, Jingli Zhang, Zongwei Cao, Haoyang Lan, Xinxiang Li, Yi Xu, Yuqiu Gu, Zhigang Deng, Zhimeng Zhang, Changxiang Tan, Wen Luo, Yun Yuan, and Weimin Zhou
Phys. Rev. Research 5, 043120 (2023) - Published 6 November, 2023
Ravid Shaniv, Chris Reetz, and Cindy A. Regal
Phys. Rev. Research 5, 043121 (2023) - Published 6 November, 2023
Noah F. Q. Yuan
Phys. Rev. Research 5, 043122 (2023) - Published 6 November, 2023
Tomokatsu Onaga, Fabio Caccioli, and Teruyoshi Kobayashi
Phys. Rev. Research 5, 043123 (2023) - Published 6 November, 2023
D. Wuhrer, L. Rózsa, U. Nowak, and W. Belzig
Phys. Rev. Research 5, 043124 (2023) - Published 6 November, 2023
Qi-Ming Chen, Priyank Singh, Rostislav Duda, Giacomo Catto, Aarne Keränen, Arman Alizadeh, Timm Mörstedt, Aashish Sah, András Gunyhó, Wei Liu, and Mikko Möttönen
Phys. Rev. Research 5, 043126 (2023) - Published 7 November, 2023
Quoc Hoan Tran, Sanjib Ghosh, and Kohei Nakajima
Phys. Rev. Research 5, 043127 (2023) - Published 7 November, 2023
Julian Bender, Patrick Emonts, and J. Ignacio Cirac
Phys. Rev. Research 5, 043128 (2023) - Published 7 November, 2023
Philipp G. Meyer, Andrey G. Cherstvy, Henrik Seckler, Robert Hering, Niels Blaum, Florian Jeltsch, and Ralf Metzler
Phys. Rev. Research 5, 043129 (2023) - Published 7 November, 2023
Kohei Nagai, Kento Uchida, Satoshi Kusaba, Takahiko Endo, Yasumitsu Miyata, and Koichiro Tanaka
Phys. Rev. Research 5, 043130 (2023) - Published 7 November, 2023
Yuki Sato and Kiyoshi Kanazawa
Phys. Rev. Research 5, 043131 (2023) - Published 8 November, 2023
An analysis of data from the Tokyo Stock Exchange provides the first quantitative evidence for the Lillo-Mike-Farmer model—a long-standing theory in economics.
Isabelle D. Harris, Hamish Meffin, Anthony N. Burkitt, and Andre D. H. Peterson
Phys. Rev. Research 5, 043132 (2023) - Published 8 November, 2023
W. Wu, W. J. Guo, P. Zheng, Zh. Li, G. Li, and J. L. Luo
Phys. Rev. Research 5, 043133 (2023) - Published 8 November, 2023
G. Bougas, S. I. Mistakidis, P. Schmelcher, C. H. Greene, and P. Giannakeas
Phys. Rev. Research 5, 043134 (2023) - Published 8 November, 2023
Yao-Tong Chen, Lei Du, Yan Zhang, Lingzhen Guo, Jin-Hui Wu, M. Artoni, and G. C. La Rocca
Phys. Rev. Research 5, 043135 (2023) - Published 9 November, 2023
Katsuhiro Endo, Yuki Sato, Rudy Raymond, Kaito Wada, Naoki Yamamoto, and Hiroshi C. Watanabe
Phys. Rev. Research 5, 043136 (2023) - Published 9 November, 2023
Hayato Goto, Yinghao Ho, and Taro Kanao
Phys. Rev. Research 5, 043137 (2023) - Published 9 November, 2023
Jonathan Berkheim, Eliyahu Bordo, Eldar Ragonis, Lev Merensky, and Avner Fleischer
Phys. Rev. Research 5, 043138 (2023) - Published 9 November, 2023
Yun-Hua Kuo and Hong-Bin Chen
Phys. Rev. Research 5, 043139 (2023) - Published 9 November, 2023
H. M. Doeleman, T. Schatteburg, R. Benevides, S. Vollenweider, D. Macri, and Y. Chu
Phys. Rev. Research 5, 043140 (2023) - Published 9 November, 2023
Fanqi Meng, Frederik Walla, Sergey Kovalev, Jan-Christoph Deinert, Igor Ilyakov, Min Chen, Alexey Ponomaryov, Sergey G. Pavlov, Heinz-Wilhelm Hübers, Nikolay V. Abrosimov, Christoph Jungemann, Hartmut G. Roskos, and Mark D. Thomson
Phys. Rev. Research 5, 043141 (2023) - Published 9 November, 2023
B. K. Sahoo and B. Ohayon
Phys. Rev. Research 5, 043142 (2023) - Published 13 November, 2023
Alexander Nikolaenko, Subir Sachdev, and Aavishkar A. Patel
Phys. Rev. Research 5, 043143 (2023) - Published 13 November, 2023
M. C. Gordillo
Phys. Rev. Research 5, 043144 (2023) - Published 13 November, 2023
Adélaïde A. Mohr, Daniel M. Busiello, Stefano Zamuner, and Paolo De Los Rios
Phys. Rev. Research 5, 043145 (2023) - Published 13 November, 2023
H. Lane, P. M. Sarte, K. Guratinder, A. M. Arevalo-Lopez, R. S. Perry, E. C. Hunter, T. Weber, B. Roessli, A. Stunault, Y. Su, R. A. Ewings, S. D. Wilson, P. Böni, J. P. Attfield, and C. Stock
Phys. Rev. Research 5, 043146 (2023) - Published 13 November, 2023
Renan P. Maciel, Olle Eriksson, Yaroslav O. Kvashnin, Danny Thonig, Daria Belotcerkovtceva, M. Venkata Kamalakar, and Chin Shen Ong
Phys. Rev. Research 5, 043147 (2023) - Published 13 November, 2023
Yuta Sakamoto and Takahiro Sakaue
Phys. Rev. Research 5, 043148 (2023) - Published 13 November, 2023
L. F. Melo, M. A. Solís-Prosser, O. Jiménez, A. Delgado, and L. Neves
Phys. Rev. Research 5, 043149 (2023) - Published 13 November, 2023
Zhaohui Dong, Xianfeng Chen, and Luqi Yuan
Phys. Rev. Research 5, 043150 (2023) - Published 13 November, 2023
Ihar Babushkin, Liping Shi (石理平), Ayhan Demircan, Uwe Morgner, Joachim Herrmann, and Anton Husakou
Phys. Rev. Research 5, 043151 (2023) - Published 14 November, 2023
Usman Ali, Martin Holthaus, and Torsten Meier
Phys. Rev. Research 5, 043152 (2023) - Published 15 November, 2023
P. Hadjisolomou, R. Shaisultanov, T. M. Jeong, P. Valenta, and S. V. Bulanov
Phys. Rev. Research 5, 043153 (2023) - Published 15 November, 2023
Rintaro Inoue, Tomotaka Oroguchi, Takashi Oda, Bela Farago, Anne Martel, Lionel Porcar, Mamoru Sato, and Masaaki Sugiyama
Phys. Rev. Research 5, 043154 (2023) - Published 15 November, 2023
Fyodor Morozko, Andrey Novitsky, Alexander Mikhalychev, and Alina Karabchevsky
Phys. Rev. Research 5, 043155 (2023) - Published 16 November, 2023
YuanDong Wang, Zhen-Gang Zhu, and Gang Su
Phys. Rev. Research 5, 043156 (2023) - Published 16 November, 2023
Madhur Mangalam, Damian G. Kelty-Stephen, Junichiro Hayano, Eiichi Watanabe, and Ken Kiyono
Phys. Rev. Research 5, 043157 (2023) - Published 16 November, 2023
D. Scharwald, T. Meier, and P. R. Sharapova
Phys. Rev. Research 5, 043158 (2023) - Published 16 November, 2023
Gaia Forghieri, Andrea Secchi, Andrea Bertoni, Paolo Bordone, and Filippo Troiani
Phys. Rev. Research 5, 043159 (2023) - Published 17 November, 2023
Samuel L. Jacob, Gabriel T. Landi, Massimiliano Esposito, and Felipe Barra
Phys. Rev. Research 5, 043160 (2023) - Published 20 November, 2023
Aravind P. Babu, Tuure Orell, Vasilii Vadimov, Wallace Teixeira, Mikko Möttönen, and Matti Silveri
Phys. Rev. Research 5, 043161 (2023) - Published 20 November, 2023
Tong Gong, Lian-Lian Zhang, Cui Jiang, Shu-Feng Zhang, and Wei-Jiang Gong
Phys. Rev. Research 5, 043162 (2023) - Published 21 November, 2023
Victor Kasatkin, Larry Gu, and Daniel A. Lidar
Phys. Rev. Research 5, 043163 (2023) - Published 21 November, 2023
Takumi Fukushima, Nayuta Takemori, Shiro Sakai, Masanori Ichioka, and Anuradha Jagannathan
Phys. Rev. Research 5, 043164 (2023) - Published 21 November, 2023
Kirill Alpin, Moritz M. Hirschmann, Niclas Heinsdorf, Andreas Leonhardt, Wan Yee Yau, Xianxin Wu, and Andreas P. Schnyder
Phys. Rev. Research 5, 043165 (2023) - Published 21 November, 2023
Mungo Frost, Andreas Hermann, Siegfried H. Glenzer, and Graeme J. Ackland
Phys. Rev. Research 5, 043166 (2023) - Published 21 November, 2023
Yusuke Koyama, Kazuya Fujimoto, Shuta Nakajima, and Yuki Kawaguchi
Phys. Rev. Research 5, 043167 (2023) - Published 22 November, 2023
Siyuan Chen, Yiqi Yang, Miguel Morales, and Shiwei Zhang
Phys. Rev. Research 5, 043169 (2023) - Published 22 November, 2023
Martine Schut, Alexey Grinin, Andrew Dana, Sougato Bose, Andrew Geraci, and Anupam Mazumdar
Phys. Rev. Research 5, 043170 (2023) - Published 27 November, 2023
Shuntaro Sumita, Makoto Naka, and Hitoshi Seo
Phys. Rev. Research 5, 043171 (2023) - Published 27 November, 2023
Márk Kondákor and Karlo Penc
Phys. Rev. Research 5, 043172 (2023) - Published 27 November, 2023
Haining Pan, Eun-Ah Kim, and Chao-Ming Jian
Phys. Rev. Research 5, 043173 (2023) - Published 27 November, 2023
A. P. dos Santos, F. Jiménez-Ángeles, A. Ehlen, and M. Olvera de la Cruz
Phys. Rev. Research 5, 043174 (2023) - Published 27 November, 2023
Qingyu Li, Chiranjib Mukhopadhyay, and Abolfazl Bayat
Phys. Rev. Research 5, 043175 (2023) - Published 27 November, 2023
Harley D. Scammell and Oleg P. Sushkov
Phys. Rev. Research 5, 043176 (2023) - Published 27 November, 2023
Po-Chen Kuo, Neill Lambert, Mauro Cirio, Yi-Te Huang, Franco Nori, and Yueh-Nan Chen
Phys. Rev. Research 5, 043177 (2023) - Published 27 November, 2023
Akio Kawasaki
Phys. Rev. Research 5, 043178 (2023) - Published 27 November, 2023
Ming-shuo Sun, Wen-Lin Wang, Xing-Yu Zhou, Chun-Hui Zhang, and Qin Wang
Phys. Rev. Research 5, 043179 (2023) - Published 27 November, 2023
Christian Mangeng, Yanning Yin, Richard Karl, and Stefan Willitsch
Phys. Rev. Research 5, 043180 (2023) - Published 27 November, 2023
Philipp Rüßmann, Masoud Bahari, Stefan Blügel, and Björn Trauzettel
Phys. Rev. Research 5, 043181 (2023) - Published 27 November, 2023
Rubén Seoane Souto, Athanasios Tsintzis, Martin Leijnse, and Jeroen Danon
Phys. Rev. Research 5, 043182 (2023) - Published 27 November, 2023
Hsiao-Yi Chen, Takuya Nomoto, and Ryotaro Arita
Phys. Rev. Research 5, 043183 (2023) - Published 27 November, 2023
Asghar Ullah, M. Tahir Naseem, and Özgür E. Müstecaplıoğlu
Phys. Rev. Research 5, 043184 (2023) - Published 27 November, 2023
Yang Xiao, Dehua Liu, Jizhou He, Lin Zhuang, Wu-Ming Liu, L.-L Yan, and Jianhui Wang
Phys. Rev. Research 5, 043185 (2023) - Published 27 November, 2023
Kayoung Ban, Dong Woo Kang, Tae-Geun Kim, Seong Chan Park, and Yeji Park
Phys. Rev. Research 5, 043186 (2023) - Published 27 November, 2023
Daneng Yang and Hai-Bo Yu
Phys. Rev. Research 5, 043187 (2023) - Published 28 November, 2023
Owen Moulding, Lewis J. Conway, Israel Osmond, Sam Cross, Andreas Hermann, Jonathan Buhot, and Sven Friedemann
Phys. Rev. Research 5, 043188 (2023) - Published 28 November, 2023
Peter Schmelcher
Phys. Rev. Research 5, 043189 (2023) - Published 29 November, 2023
Yuting Tan, Pak Ki Henry Tsang, Vladimir Dobrosavljević, and Louk Rademaker
Phys. Rev. Research 5, 043190 (2023) - Published 1 December, 2023
Timo Gräßer, Kristine Rezai, Alexander O. Sushkov, and Götz S. Uhrig
Phys. Rev. Research 5, 043191 (2023) - Published 1 December, 2023
Chen-How Huang, Thierry Giamarchi, and Miguel A. Cazalilla
Phys. Rev. Research 5, 043192 (2023) - Published 1 December, 2023
Omer Chor, Amir Sohachi, Rémi Goerlich, Eran Rosen, Saar Rahav, and Yael Roichman
Phys. Rev. Research 5, 043193 (2023) - Published 1 December, 2023
Joel Howard, Alexander Lidiak, Casey Jameson, Bora Basyildiz, Kyle Clark, Tongyu Zhao, Mustafa Bal, Junling Long, David P. Pappas, Meenakshi Singh, and Zhexuan Gong
Phys. Rev. Research 5, 043194 (2023) - Published 1 December, 2023
Seongjin Ahn, Andrey S. Moskalenko, Vladimir Y. Chernyak, and Shaul Mukamel
Phys. Rev. Research 5, 043195 (2023) - Published 4 December, 2023
Yuval Scher, Shlomi Reuveni, and Denis S. Grebenkov
Phys. Rev. Research 5, 043196 (2023) - Published 4 December, 2023
Jiong Cheng, Wenlin Li, and Jie Li
Phys. Rev. Research 5, 043197 (2023) - Published 4 December, 2023
Teerachote Pakornchote, Annop Ektarawong, and Thiparat Chotibut
Phys. Rev. Research 5, 043198 (2023) - Published 4 December, 2023
Qichen Xu, I. P. Miranda, Manuel Pereiro, Filipp N. Rybakov, Danny Thonig, Erik Sjöqvist, Pavel F. Bessarab, Anders Bergman, Olle Eriksson, Pawel Herman, and Anna Delin
Phys. Rev. Research 5, 043199 (2023) - Published 4 December, 2023
Lei Shi, Jie Hu, Libin Jin, Chen Shen, Huaiyu Tan, and Dalei Yu
Phys. Rev. Research 5, 043200 (2023) - Published 5 December, 2023
M. Fan, Roy A. Ready, H. Li, S. Kofford, R. Kwapisz, C. A. Holliman, M. S. Ladabaum, A. N. Gaiser, J. R. Griswold, and A. M. Jayich
Phys. Rev. Research 5, 043201 (2023) - Published 5 December, 2023
Dripto M. Debroy, Élie Genois, Jonathan A. Gross, Wojciech Mruczkiewicz, Kenny Lee, Sabrina Hong, Zijun Chen, Vadim Smelyanskiy, and Zhang Jiang
Phys. Rev. Research 5, 043202 (2023) - Published 5 December, 2023
Andre S. Sunahara, Matjaž Perc, and Haroldo V. Ribeiro
Phys. Rev. Research 5, 043203 (2023) - Published 5 December, 2023
Methods from time series analysis, dimensionality reduction, and network science are combined to show evidence for the natural emergence of six universal patterns of productivity in scientific careers: constant, u-shaped, decreasing, periodic, increasing, and canonical curves. Canonical curves are the most prevalent pattern, but contrary to expectations, productivity peaks occur much more frequently around midcareer rather than early.
Martin Gembé, Heinz-Jürgen Schmidt, Ciarán Hickey, Johannes Richter, Yasir Iqbal, and Simon Trebst
Phys. Rev. Research 5, 043204 (2023) - Published 5 December, 2023
Shuai Shao, Markus Meister, and Julijana Gjorgjieva
Phys. Rev. Research 5, 043205 (2023) - Published 5 December, 2023
A generalized theoretical framework of neuronal coding is developed. The theory assumes that neuronal populations implement efficient coding that maximizes the Shannon mutual information between stimuli and spikes. The resulting optimal neuronal activation functions partition the stimulus space equally, and the mutual information is independent of the fraction of ON and OFF neurons.
Shuhong Hao and Zheshen Zhang
Phys. Rev. Research 5, 043206 (2023) - Published 5 December, 2023
Frieder Lindel, Alexa Marina Herter, Jérôme Faist, and Stefan Yoshi Buhmann
Phys. Rev. Research 5, 043207 (2023) - Published 6 December, 2023
Zimo Sun, Fedor K. Popov, Igor R. Klebanov, and Kiryl Pakrouski
Phys. Rev. Research 5, 043208 (2023) - Published 6 December, 2023
Bo-Wei Qin (秦伯韡) and Wei Lin (林伟)
Phys. Rev. Research 5, 043209 (2023) - Published 6 December, 2023
Giovanni Di Bartolomeo, Michele Vischi, Francesco Cesa, Roman Wixinger, Michele Grossi, Sandro Donadi, and Angelo Bassi
Phys. Rev. Research 5, 043210 (2023) - Published 6 December, 2023
Amin Nejatbakhsh, Francesco Fumarola, Saleh Esteki, Taro Toyoizumi, Roozbeh Kiani, and Luca Mazzucato
Phys. Rev. Research 5, 043211 (2023) - Published 7 December, 2023
A crucial challenge in targeted manipulation of neural activity is to identify perturbation sites whose stimulation exerts significant effects downstream with high efficacy, a procedure currently achieved by labor-intensive trial and error. It is demonstrated that the effects of electrical microstimulation on neural activity in the prefrontal cortex of alert monkeys can be predicted solely based on the functional connectivity estimated from cortical recordings at rest.
Shuichi Iwakiri, Jakob Miller, Florian Lang, Jakob Prettenthaler, Takashi Taniguchi, Kenji Watanabe, Sung Sik Lee, Pascal Becker, Detlef Günther, Thomas Ihn, and Klaus Ensslin
Phys. Rev. Research 5, 043212 (2023) - Published 7 December, 2023
Álvaro Nodar, Ruben Esteban, Unai Muniain, Michael J. Steel, Javier Aizpurua, and Mikołaj K. Schmidt
Phys. Rev. Research 5, 043213 (2023) - Published 7 December, 2023
Nikita Astrakhantsev, Glenn Wagner, Tom Westerhout, Titus Neupert, and Mark H. Fischer
Phys. Rev. Research 5, 043214 (2023) - Published 7 December, 2023
Koushik Swaminathan, Poula Tadros, and Sebastiano Peotta
Phys. Rev. Research 5, 043215 (2023) - Published 8 December, 2023
Shih-Kai Chou, Jyh-Pin Chou, Alice Hu, Yuan-Chung Cheng, and Hsi-Sheng Goan
Phys. Rev. Research 5, 043216 (2023) - Published 8 December, 2023
Ken N. Okada, Keita Osaki, Kosuke Mitarai, and Keisuke Fujii
Phys. Rev. Research 5, 043217 (2023) - Published 8 December, 2023
Helen S. Ansell, Samuel J. Frank, and István A. Kovács
Phys. Rev. Research 5, 043218 (2023) - Published 8 December, 2023
Manoj Gupta, Basudeb Mondal, Subhro Bhattacharjee, and Tanusri Saha Dasgupta
Phys. Rev. Research 5, 043219 (2023) - Published 8 December, 2023
Javier Gonzalez-Conde, Ángel Rodríguez-Rozas, Enrique Solano, and Mikel Sanz
Phys. Rev. Research 5, 043220 (2023) - Published 8 December, 2023
Tomoki Kurikawa and Kunihiko Kaneko
Phys. Rev. Research 5, 043221 (2023) - Published 8 December, 2023
Takuya U. Sato, Chikara Furusawa, and Kunihiko Kaneko
Phys. Rev. Research 5, 043222 (2023) - Published 11 December, 2023
J. D. Hernández Velázquez, Z. Nussinov, and A. Gama Goicochea
Phys. Rev. Research 5, 043223 (2023) - Published 11 December, 2023
Henning Schomerus
Phys. Rev. Research 5, 043224 (2023) - Published 11 December, 2023
Taiki Haga, Masaya Nakagawa, Ryusuke Hamazaki, and Masahito Ueda
Phys. Rev. Research 5, 043225 (2023) - Published 11 December, 2023
G. Catarina, J. C. G. Henriques, A. Molina-Sánchez, A. T. Costa, and J. Fernández-Rossier
Phys. Rev. Research 5, 043226 (2023) - Published 11 December, 2023
Sami C. Al-Izzi and Gareth P. Alexander
Phys. Rev. Research 5, 043227 (2023) - Published 11 December, 2023
Aleksa Krstić, Frank Setzpfandt, and Sina Saravi
Phys. Rev. Research 5, 043228 (2023) - Published 11 December, 2023
Fan Yang, Paolo Molignini, and Emil J. Bergholtz
Phys. Rev. Research 5, 043229 (2023) - Published 11 December, 2023
Avik Banerjee, Toshali Mitra, and Ayan Mukhopadhyay
Phys. Rev. Research 5, 043230 (2023) - Published 11 December, 2023
Andrzej Ptok, William R. Meier, Aksel Kobiałka, Surajit Basak, Małgorzata Sternik, Jan Łażewski, Paweł T. Jochym, Michael A. McGuire, Brian C. Sales, Hu Miao, Przemysław Piekarz, and Andrzej M. Oleś
Phys. Rev. Research 5, 043231 (2023) - Published 11 December, 2023
Wu Wang and Xu Wang
Phys. Rev. Research 5, 043232 (2023) - Published 12 December, 2023
C. J. Ho, S. C. Wright, B. E. Sauer, and M. R. Tarbutt
Phys. Rev. Research 5, 043233 (2023) - Published 12 December, 2023
Niklas Hörnedal and Ole Sönnerborn
Phys. Rev. Research 5, 043234 (2023) - Published 12 December, 2023
Wenzhao Yu, Huijun Jiang, and Zhonghuai Hou
Phys. Rev. Research 5, 043235 (2023) - Published 12 December, 2023
Matthias Werner, Artur García-Sáez, and Marta P. Estarellas
Phys. Rev. Research 5, 043236 (2023) - Published 13 December, 2023
Harjot Singh, Jasvith Raj Basani, and Edo Waks
Phys. Rev. Research 5, 043237 (2023) - Published 13 December, 2023
Xiaokuan Hao, Xudong Wei, Hanyu Liu, Xiaoxu Song, Rongxin Sun, Guoying Gao, and Yongjun Tian
Phys. Rev. Research 5, 043238 (2023) - Published 13 December, 2023
Yahui Li, Pablo Sala, and Frank Pollmann
Phys. Rev. Research 5, 043239 (2023) - Published 13 December, 2023
Nicholas Rivera, Jamison Sloan, Ido Kaminer, and Marin Soljačić
Phys. Rev. Research 5, 043240 (2023) - Published 13 December, 2023
T. Zolkin, Y. Kharkov, and S. Nagaitsev
Phys. Rev. Research 5, 043241 (2023) - Published 13 December, 2023
Philipp Pfeffer, Florian Heyder, and Jörg Schumacher
Phys. Rev. Research 5, 043242 (2023) - Published 13 December, 2023
Liu Ziyin and Masahito Ueda
Phys. Rev. Research 5, 043243 (2023) - Published 14 December, 2023
Johannes Zirkelbach, Burak Gurlek, Masoud Mirzaei, Alexey Shkarin, Tobias Utikal, Stephan Götzinger, and Vahid Sandoghdar
Phys. Rev. Research 5, 043244 (2023) - Published 14 December, 2023
D. Trabert, A. Geyer, N. Anders, M. Hofmann, M. S. Schöffler, L. Ph. H. Schmidt, T. Jahnke, M. Kunitski, R. Dörner, and S. Eckart
Phys. Rev. Research 5, 043245 (2023) - Published 14 December, 2023
Jonathan Bauermann, Giacomo Bartolucci, Job Boekhoven, Christoph A. Weber, and Frank Jülicher
Phys. Rev. Research 5, 043246 (2023) - Published 14 December, 2023
Kui Wang, Yao Sun, Mi Zhou, Hanyu Liu, Guangchen Ma, Hongbo Wang, Guangtao Liu, and Yanming Ma
Phys. Rev. Research 5, 043248 (2023) - Published 15 December, 2023
Yen-Tung Lin, Shao-Fu Liu, Pochung Chen, and Yu-Cheng Lin
Phys. Rev. Research 5, 043249 (2023) - Published 15 December, 2023
Lento Nagano, Alexander Miessen, Tamiya Onodera, Ivano Tavernelli, Francesco Tacchino, and Koji Terashi
Phys. Rev. Research 5, 043250 (2023) - Published 15 December, 2023
Eden Nitzan, Aishani Ghosal, and Gili Bisker
Phys. Rev. Research 5, 043251 (2023) - Published 15 December, 2023
William Gilpin
Phys. Rev. Research 5, 043252 (2023) - Published 15 December, 2023
Zhiyin Yang, Dehua Chen, Gang Hu, and Zonghua Liu
Phys. Rev. Research 5, 043253 (2023) - Published 15 December, 2023
River R. Robles, Aliaksei Halavanau, Gabriel Marcus, and Zhirong Huang
Phys. Rev. Research 5, 043254 (2023) - Published 18 December, 2023
Michael Kreiczer and Yakir Hadad
Phys. Rev. Research 5, 043256 (2023) - Published 18 December, 2023
Riccardo Catena, Timon Emken, Marek Matas, Nicola A. Spaldin, and Einar Urdshals
Phys. Rev. Research 5, 043257 (2023) - Published 15 December, 2023
Riccardo Catena, Timon Emken, Marek Matas, Nicola A. Spaldin, and Einar Urdshals
Phys. Rev. Research 5, 043258 (2023) - Published 15 December, 2023
Ville A. J. Pyykkönen, Grazia Salerno, Jaakko Kähärä, and Päivi Törmä
Phys. Rev. Research 5, 043259 (2023) - Published 18 December, 2023
Tomonori Tanizawa, Yuki Takeuchi, Shion Yamashika, Ryosuke Yoshii, and Shunji Tsuchiya
Phys. Rev. Research 5, 043260 (2023) - Published 19 December, 2023
Jun Fujisaki, Kazunori Maruyama, Hirotaka Oshima, Shintaro Sato, Tatsuya Sakashita, Yusaku Takeuchi, and Keisuke Fujii
Phys. Rev. Research 5, 043261 (2023) - Published 19 December, 2023
Carl P. Romao, Riccardo Catena, Nicola A. Spaldin, and Marek Matas
Phys. Rev. Research 5, 043262 (2023) - Published 19 December, 2023
Mohammad Alipourzadeh, Yaser Hajati, and Jamal Berakdar
Phys. Rev. Research 5, 043263 (2023) - Published 19 December, 2023
Jason Hindes, Luis Mier-y-Teran-Romero, Ira B. Schwartz, and Michael Assaf
Phys. Rev. Research 5, 043264 (2023) - Published 19 December, 2023
Oleksandr Gamayun, Miłosz Panfil, and Felipe Taha Sant'Ana
Phys. Rev. Research 5, 043265 (2023) - Published 19 December, 2023
Hideaki Iwasawa, Tetsuro Ueno, Yoshiyuki Yoshida, Hiroshi Eisaki, Yoshihiro Aiura, and Kenya Shimada
Phys. Rev. Research 5, 043266 (2023) - Published 20 December, 2023
Chunhan Feng, Eduardo Ibarra-García-Padilla, Kaden R. A. Hazzard, Richard Scalettar, Shiwei Zhang, and Ettore Vitali
Phys. Rev. Research 5, 043267 (2023) - Published 20 December, 2023
Songhao Yin, Hiroshi Kori, and Yuki Izumida
Phys. Rev. Research 5, 043268 (2023) - Published 20 December, 2023
Caiyun Chen, Jiangchang Zheng, Ruopeng Yu, Soumya Sankar, Kam Tuen Law, Hoi Chun Po, and Berthold Jäck
Phys. Rev. Research 5, 043269 (2023) - Published 20 December, 2023
Simon Martin and Tarun Grover
Phys. Rev. Research 5, 043270 (2023) - Published 20 December, 2023
Gefen Baranes, Shiran Even-Haim, Ron Ruimy, Alexey Gorlach, Raphael Dahan, Asaf A. Diringer, Shay Hacohen-Gourgy, and Ido Kaminer
Phys. Rev. Research 5, 043271 (2023) - Published 20 December, 2023
Jacob Holder, Daniel Kazenwadel, Peter Nielaba, and Peter Baum
Phys. Rev. Research 5, 043272 (2023) - Published 20 December, 2023
Yaoling Yang, Victor Montenegro, and Abolfazl Bayat
Phys. Rev. Research 5, 043273 (2023) - Published 20 December, 2023
Alessandro Ferreri, Vincenzo Macrì, Frank K. Wilhelm, Franco Nori, and David Edward Bruschi
Phys. Rev. Research 5, 043274 (2023) - Published 21 December, 2023
Ze Ruan, Xiu-Cai Jiang, Ze-Yi Song, and Yu-Zhong Zhang
Phys. Rev. Research 5, 043275 (2023) - Published 21 December, 2023
Manuel Tuniz, Davide Soranzio, Davide Bidoggia, Denny Puntel, Wibke Bronsch, Steven L. Johnson, Maria Peressi, Fulvio Parmigiani, and Federico Cilento
Phys. Rev. Research 5, 043276 (2023) - Published 21 December, 2023
Ruben S. Andrist, Martin J. A. Schuetz, Pierre Minssen, Romina Yalovetzky, Shouvanik Chakrabarti, Dylan Herman, Niraj Kumar, Grant Salton, Ruslan Shaydulin, Yue Sun, Marco Pistoia, and Helmut G. Katzgraber
Phys. Rev. Research 5, 043277 (2023) - Published 21 December, 2023
Iago N. Mamede, Karel Proesmans, and Carlos E. Fiore
Phys. Rev. Research 5, 043278 (2023) - Published 22 December, 2023
Martin Koppenhöfer and A. A. Clerk
Phys. Rev. Research 5, 043279 (2023) - Published 22 December, 2023
Tomohiro Tanogami, Tan Van Vu, and Keiji Saito
Phys. Rev. Research 5, 043280 (2023) - Published 22 December, 2023
Seeralan Sarvaharman and Luca Giuggioli
Phys. Rev. Research 5, 043281 (2023) - Published 22 December, 2023
Juan Ramón Muñoz de Nova and Fernando Sols
Phys. Rev. Research 5, 043282 (2023) - Published 22 December, 2023
J. Rist, M. Weller, M. Kircher, D. Trabert, N. Melzer, J. Siebert, I. Vela-Perez, M. Waitz, G. Kastirke, S. Eckart, S. Grundmann, M. S. Schöffler, R. Dörner, F. Trinter, and T. Jahnke
Phys. Rev. Research 5, 043283 (2023) - Published 22 December, 2023
Thomas Schuster, Murphy Niu, Jordan Cotler, Thomas O'Brien, Jarrod R. McClean, and Masoud Mohseni
Phys. Rev. Research 5, 043284 (2023) - Published 22 December, 2023
Zheng-Hang Sun, Yong-Yi Wang, Yu-Ran Zhang, Franco Nori, and Heng Fan
Phys. Rev. Research 5, 043285 (2023) - Published 22 December, 2023
G. Dagvadorj, P. Comaron, and M. H. Szymańska
Phys. Rev. Research 5, 043286 (2023) - Published 22 December, 2023
Javier Ureña-Carrión, Fariba Karimi, Gerardo Íñiguez, and Mikko Kivelä
Phys. Rev. Research 5, 043287 (2023) - Published 22 December, 2023
S. E. Begg, A. G. Green, and M. J. Bhaseen
Phys. Rev. Research 5, 043288 (2023) - Published 26 December, 2023
Tomoyuki Maruyama, Takehito Hayakawa, Ryoichi Hajima, Toshitaka Kajino, and Myung-Ki Cheoun
Phys. Rev. Research 5, 043289 (2023) - Published 26 December, 2023
O. T. Whaites, C. I. Ioannou, B. J. Pingault, G. L. van de Stolpe, T. H. Taminiau, and T. S. Monteiro
Phys. Rev. Research 5, 043291 (2023) - Published 26 December, 2023
Sequences of periodic microwave pulses are used to efficiently transfer polarization from an NV defect electronic spin in diamond to surrounding nuclei, at specific resonant periods. It’s theoretically and experimentally demonstrated that the presence of a “blocking spin,” a nuclear spin with similar precession frequency but stronger coupling, leads to expulsion of polarization resonances of other nuclear spins from the central resonant period region, affecting the efficiency of the polarization protocol.
Kei Kinoshita, Rai Moriya, Shota Okazaki, Yijin Zhang, Satoru Masubuchi, Kenji Watanabe, Takashi Taniguchi, Takao Sasagawa, and Tomoki Machida
Phys. Rev. Research 5, 043292 (2023) - Published 26 December, 2023
Xin Wang, Yu-Hung Kuan, Jun Jie Cui, Yu Kun Yang, Fan Xing, Wen-Te Liao, Luqi Yuan, Yongjun Cheng, Zeyang Liao, Zheng Li, and Song Bin Zhang
Phys. Rev. Research 5, 043293 (2023) - Published 26 December, 2023
Sergio Leiva-Montecinos, Jürgen Henk, Ingrid Mertig, and Annika Johansson
Phys. Rev. Research 5, 043294 (2023) - Published 26 December, 2023
Josephine Dias, Christopher W. Wächtler, Kae Nemoto, and William J. Munro
Phys. Rev. Research 5, 043295 (2023) - Published 26 December, 2023
Ayaka Sakata and Kunihiko Kaneko
Phys. Rev. Research 5, 043296 (2023) - Published 26 December, 2023
Denis R. Candido, Sigurdur I. Erlingsson, Hamed Gramizadeh, João Vitor I. Costa, Pirmin J. Weigele, Dominik M. Zumbühl, and J. Carlos Egues
Phys. Rev. Research 5, 043297 (2023) - Published 27 December, 2023
Greg I. Acosta, Malachi Hood, and Mohammad Ghashami
Phys. Rev. Research 5, 043298 (2023) - Published 27 December, 2023
King Hang Mok and Ragnar Fleischmann
Phys. Rev. Research 5, 043299 (2023) - Published 27 December, 2023
Jonathan Nemirovsky, Rafi Weill, Ilan Meltzer, and Yoav Sagi
Phys. Rev. Research 5, 043300 (2023) - Published 29 December, 2023
Miroslav Hopjan and Lev Vidmar
Phys. Rev. Research 5, 043301 (2023) - Published 29 December, 2023
Hudson Leone, S. Srikara, Peter P. Rohde, and Simon Devitt
Phys. Rev. Research 5, 043302 (2023) - Published 29 December, 2023
R. Giampaoli, J. L. Figueiredo, J. D. Rodrigues, J. A. Rodrigues, H. Terças, and J. T. Mendonça
Phys. Rev. Research 5, 043303 (2023) - Published 29 December, 2023
Shijie Liu, Rui Xiao, Donghua Zhao, and Yongzheng Sun
Phys. Rev. Research 5, 043304 (2023) - Published 29 December, 2023
Lev Vaidman
Phys. Rev. Research 5, 048001 (2023) - Published 8 November, 2023
Jonte R. Hance, John Rarity, and James Ladyman
Phys. Rev. Research 5, 048002 (2023) - Published 8 November, 2023
Salini Karuvade, Abhijeet Alase, Jacob L. Barnett, and Barry C. Sanders
Phys. Rev. Research 5, 049001 (2023) - Published 5 October, 2023
XinXin Du and Michael J. Shelley
Phys. Rev. Research 5, 049002 (2023) - Published 20 October, 2023
M. Ramakrishnan, Y. Joly, Q. N. Meier, M. Fechner, M. Porer, S. Parchenko, Y. W. Windsor, E. M. Bothschafter, F. Lichtenberg, and U. Staub
Phys. Rev. Research 5, 049003 (2023) - Published 6 November, 2023
C. D. Parmee, K. E. Ballantine, and J. Ruostekoski
Phys. Rev. Research 5, 049004 (2023) - Published 15 November, 2023