Browse by Subject

Ultracold High-Spin Σ-State Polar Molecules for New Physics Searches

Alessio Ciamei, Adam Koza, Marcin Gronowski, and Michał Tomza

Phys. Rev. X 16, 011052 (2026) - Published 9 March, 2026

Ultracold YbCr molecules, featuring large internal electric fields and an ideal rotational structure controllable with modest laboratory fields, are proposed as a sensitive platform for probing physics beyond the standard model.

Unraveling Real-Time Chemical Shifts in the Ultrafast Regime

Daniel E. Rivas, Lorenzo Paoloni, Rebecca Boll, Alberto De Fanis, Ana Martínez Gutiérrez, Tommaso Mazza, Solène Oberli, Oliver Alexander, André Al-Haddad, Thomas M. Baumann, Christoph Bostedt, Simon Dold, Gianluca Geloni, Markus Ilchen, Dooshaye Moonshiram, Daniel Rolles, Artem Rudenko, Philipp Schmidt, Svitozar Serkez, Sergey Usenko, Ángel Martín Pendás, Michael Meyer, Jesús González-Vázquez, and Antonio Picón

Phys. Rev. X 16, 011051 (2026) - Published 9 March, 2026

Combining ultrafast x-ray measurements with a theoretical model allows for tracking bond breaking, molecular motion, and chemical reactions.

On-Device Control of Electronic Friction

Zhaokuan Yu, Jinbo Bian, Jin Wang, Zonghuiyi Jiang, Xuanyu Huang, Linxin Zhai, Xin Lu, Xiaofei Liu, Quanshui Zheng, and Zhiping Xu

Phys. Rev. X 16, 011050 (2026) - Published 6 March, 2026

Superlubric graphite-MoS2 contacts are constructed to demonstrate the isolation and control of electronic friction, showing a path toward on-demand tuning of energy dissipation in microscale devices.

Dynamical Response of Noncollinear Spin Systems at Constrained Magnetic Moments

Miquel Royo and Massimiliano Stengel

Phys. Rev. X 16, 011049 (2026) - Published 6 March, 2026

Constrained magnetic-moment simulations provide a stable and efficient framework for modeling coupled spin-lattice dynamics, enabling precise predictions of subgap optical responses in magnetic insulators.

Extrinsic Contribution to Bosonic Thermal Hall Transport

Léo Mangeolle and Johannes Knolle

Phys. Rev. X 16, 011048 (2026) - Published 5 March, 2026

Disorder-induced side-jump effects, often neglected, are proven to be a crucial contributor to the thermal Hall conductivity in insulating quantum materials.

Microscale Architected Materials for Elastic Waveguiding: Fabrication and Dynamic Characterization across Length and Time Scales

Vignesh Kannan, Charles Dorn, Ute Drechsler, and Dennis M. Kochmann

Phys. Rev. X 16, 011047 (2026) - Published 5 March, 2026

An experimental protocol for fabricating and characterizing microarchitected materials overcomes prior limitations.

Erratum: Strongly Interacting, Two-Dimensional, Dipolar Spin Ensembles in (111)-Oriented Diamond [Phys. Rev. X 15, 021035 (2025)]

Lillian B. Hughes, Simon A. Meynell, Weijie Wu, Shreyas Parthasarathy, Lingjie Chen, Zhiran Zhang, Zilin Wang, Emily J. Davis, Kunal Mukherjee, Norman Y. Yao, and Ania C. Bleszynski Jayich

Phys. Rev. X 16, 019902 (2026) - Published 4 March, 2026

Entropic Tug of War: Topological Constraints Spontaneously Rectify the Dynamics of a Polymer with Heterogeneous Fluctuations

Adam H. T. P. Höfler, Iurii Chubak, Christos N. Likos, and Jan Smrek

Phys. Rev. X 16, 011046 (2026) - Published 4 March, 2026

By breaking translational symmetry, topological constraints together with heterogeneous fluctuations can induce persistent directional motion in dense polymer systems, providing a deeper understanding of living chromatin dynamics.

Algorithmic Thresholds in Combinatorial Optimization Depend on the Time Scaling

M. C. Angelini, M. Avila-González, F. D’Amico, D. Machado, R. Mulet, and F. Ricci-Tersenghi

Phys. Rev. X 16, 011045 (2026) - Published 3 March, 2026

A quantitative study of simulated annealing in random K-satisfiability and q-coloring problems reveals that algorithmic thresholds in combinatorial optimization are heavily dependent on the time scaling relative to system size.

Atomic-Scale Chemical Inhomogeneity as a Determinant of Thermoelectric Transport in Bi2Te3-Based Materials

Wu Wang, Juan Cui, Zhongbin Wang, Jianrui Wang, Mingyuan Hu, Lin Xie, Lin Gan, and Jiaqing He

Phys. Rev. X 16, 011044 (2026) - Published 3 March, 2026

Atomic-scale imaging and theory show Se site preference in Bi2Te3 tunes the bonding and band gap, enabling intrinsic control of thermoelectric performance.

Anderson Localization: A Density Matrix Approach

Ziyue Qi, Yi Zhang, Mingpu Qin, Hongming Weng, and Kun Jiang

Phys. Rev. X 16, 011043 (2026) - Published 2 March, 2026

Characterization of the one-body density matrix provides a direct measure of the localization length, revealing how interactions can suppress or enhance insulating behavior in disordered quantum systems.

Hyperuniformity of Weighted Particle Systems

Salvatore Torquato, Jaeuk Kim, Michael A. Klatt, Roberto Car, and Paul J. Steinhardt

Phys. Rev. X 16, 011042 (2026) - Published 2 March, 2026

The concept of hyperuniform particle arrangements is generalized to treat particles with internal degrees of freedom.

Floquet Thermalization via Instantons near Dynamical Freezing

Rohit Mukherjee, Haoyu Guo, and Debanjan Chowdhury

Phys. Rev. X 16, 011041 (2026) - Published 27 February, 2026

Researchers use flow renormalization to reveal that rare, sudden events called instantons puncture frozen states blocking the dynamics in periodically driven systems, triggering slow thermalization.

Thermalization in Open Many-Body Systems and KMS Detailed Balance

Matteo Scandi and Álvaro M. Alhambra

Phys. Rev. X 16, 011040 (2026) - Published 27 February, 2026

A new many-body thermalization model is derived using KMS detailed balance that avoids the rotating wave approximation, enabling more accurate tracking of quantum dynamics and efficient simulation on quantum computers.

Interaction-Driven Quantum Phase Transitions between Topological and Crystalline Orders of Electrons

André Haug, Ravi Kumar, Tomer Firon, Misha Yutushui, Kenji Watanabe, Takashi Taniguchi, David F. Mross, and Yuval Ronen

Phys. Rev. X 16, 011039 (2026) - Published 26 February, 2026

Electric-field-tunable Landau-level orbital composition in bilayer graphene provides a mechanism for stabilizing electron crystals and driving transitions into exotic topological liquid states.

Quantum Theory of Fractional Topological Pumping of Lattice Solitons

Julius Bohm, Hugo Gerlitz, Christina Jörg, and Michael Fleischhauer

Phys. Rev. X 16, 011038 (2026) - Published 26 February, 2026

Self-bound many-particle objects (solitons) in topological pumps exhibit transitions between integer and fractional transport phases, controlled by interaction strength.

Stabilizer Rényi Entropy and Conformal Field Theory

Masahiro Hoshino, Masaki Oshikawa, and Yuto Ashida

Phys. Rev. X 16, 011037 (2026) - Published 25 February, 2026

Conformal field theory is used to uncover universal behaviors in nonstabilizerness. Like entanglement, this resource is governed by fundamental numbers such as the g factor.

Exploring Light-Induced Phases of 2D Materials in a Modulated 1D Quasicrystal

Yifei Bai, Anna R. Dardia, Toshihiko Shimasaki, and David M. Weld

Phys. Rev. X 16, 011036 (2026) - Published 25 February, 2026

Mapping a one-dimensional quasicrystal to a two-dimensional quantum Hall system allows for the study of light-induced metal-insulator transitions, revealing an exotic multifractal phase stabilized by elliptically polarized driving.

Molecular Motion at the Experimental Glass Transition

Romain Simon, Jean-Louis Barrat, and Ludovic Berthier

Phys. Rev. X 16, 011035 (2026) - Published 24 February, 2026

A tailored algorithm allows for the simulation of molecular liquids near the experimental glass transition.

Emulating 2D Materials with Magnons

Bobby Kaman, Jinho Lim, Yingkai Liu, and Axel Hoffmann

Phys. Rev. X 16, 011034 (2026) - Published 24 February, 2026

Patterning holes into magnetic thin films enables the emulation of electrons in 2D quantum materials and the precise control of magnon transport through topological band engineering.

Sign In to Your Journals Account

Filter

Subject

Filter

Article Lookup

Enter a citation