Recent Articles

Nature Is Stingy: Universality of Scrooge Ensembles in Quantum Many-Body Systems

Wai-Keong Mok, Tobias Haug, Wen Wei Ho, and John Preskill

Phys. Rev. X 16, 041003 (2026) - Published 2 October, 2026

Researchers introduce Scrooge k-designs to quantify how constrained quantum systems achieve universal randomness and deep thermalization.

Topological Mixed States: Phases of Matter from Axiomatic Approaches

Tai-Hsuan Yang, Bowen Shi, and Jong Yeon Lee

Phys. Rev. X 16, 041002 (2026) - Published 2 October, 2026

A quantum information framework classifies mixed-state topological phases for open quantum systems, introducing phase invariants based on an information convex set, memory capacity, and secret sharing.

Spin Nematic Liquid Crystal and Scalar Spin Chirality in Tetragonal Lattice YbMnBi2

Yaofeng Xie, Sijie Xu, Yu Pan, Taekoo Oh, Tingjun Zhang, Masaaki Matsuda, Zhaoyu Liu, Zehao Wang, Yiheng Wang, Siyu Pan, Avishek Maity, Sylwia Pawledzio, Xiaoping Wang, Songxue Chi, Feng Ye, Yiqing Hao, Huibo Cao, Barry L. Winn, Melissa K. Graves-Brook, Shuai Wu, Fan Li, Xiaoyuan Zhou, Claudia Felser, Naoto Nagaosa, and Pengcheng Dai

Phys. Rev. X 16, 041001 (2026) - Published 1 October, 2026

Neutron scattering experiments on YbMnBi2 reveal that a dynamic spin nematic state coupled to magnetic fields generates scalar spin chirality, driving anomalous Hall and Nernst effects in the paramagnetic phase.

Energy-Efficient Control of Interacting Microscopic Systems: When Longer Paths Save Energy

Samuel Monter, Lars T. Stutzer, Sarah A. M. Loos, and Clemens Bechinger

Phys. Rev. X 16, 031079 (2026) - Published 30 September, 2026

Harnessing hydrodynamic interactions offers a route to control multiparticle systems efficiently, enabling substantial reductions in the energetic cost of microscopic transport.

Quasicrystal Topological Hydrodynamics

Jun-liang Duan, Chuanjie Hu, Jiayun Ning, Xu-jie Chai, Li-Wei Wang, Yang Dong, Jianjun Liu, Shan Zhu, Huanyang Chen, Jian-Hua Jiang, and Jin-hui Chen

Phys. Rev. X 16, 031078 (2026) - Published 29 September, 2026

Quasicrystalline water waves allow exquisite insight into topological physics and provides a unique platform for manipulating particle for a wide range of applications.

Erratum: Programmable Quantum Anomalous Hall Insulator in Twisted Crystalline Flatbands [Phys. Rev. X 16, 011015 (2026)]

Wenxuan Wang, Yijie Wang, Zaizhe Zhang, Zihao Huo, Gengdong Zhou, Shu Zhang, Kenji Watanabe, Takashi Taniguchi, Xiaoxia Yang, Qing Dai, X. C. Xie, Kaihui Liu, Zhida Song, and Xiaobo Lu

Phys. Rev. X 16, 039901 (2026) - Published 28 September, 2026

Variational Multi-Gaussian Phase-Space Bosonic Dynamics via Automatic Differentiation

Jacopo Tosca, Francesco Carnazza, Luca Giacomelli, and Cristiano Ciuti

Phys. Rev. X 16, 031077 (2026) - Published 24 September, 2026

Researchers introduce a variational multi-Gaussian phase-space method combining analytical techniques with automatic differentiation to reveal the critical dynamics of large open quantum bosonic lattices.

Chaotic Many-Body Quantum Dynamics, Spectral Correlations, and Energy Diffusion

J. T. Chalker and Dominik Hahn

Phys. Rev. X 16, 031076 (2026) - Published 23 September, 2026

Researchers analyze a solvable many-body model to demonstrate how energy diffusion governs spectral correlations in chaotic quantum systems.

Interaction-Assisted Topological Pumping in Few- and Many-Atom Rydberg Arrays

Chenxi Huang, Tao Chen, Qian Liang, Matthew A. Krebs, Ethan Springhorn, Ruiyu Li, Mingsheng Tian, Kaden R. A. Hazzard, Jacob P. Covey, and Bryce Gadway

Phys. Rev. X 16, 031075 (2026) - Published 21 September, 2026

Strong dipolar interactions in Rydberg atom arrays are found to be able to bind particles into correlated pairs and clusters that undergo efficient topological pumping along a synthetic dimension.

Fractional Quantum Hall States under Density Decoherence

Zijian Wang, Ruihua Fan, Tianle Wang, Samuel J. Garratt, and Ehud Altman

Phys. Rev. X 16, 031074 (2026) - Published 21 September, 2026

Statistical mechanics mappings reveal that quantum information stored in the non-Abelian anyons of Moore-Read states resists arbitrary density dephasing, whereas that stored in the Laughlin states has an infinite robustness only above a critical filling factor.

Enduring Mechanical Memory from the Constitutive Response of Elastically Recoverable Nanostructured Materials

Abhishek Gupta, Bhanugoban Maheswaran, Nicholas Jaegersberg, Komal Chawla, and Ramathasan Thevamaran

Phys. Rev. X 16, 031073 (2026) - Published 18 September, 2026

Vertically aligned carbon nanotube foams exhibit return point memory, opening new opportunities for mechanical computing applications.

Superconductivity in Monolayer-Trilayer Phase of La3Ni2O7 under High Pressure

Chaoxin Huang, Jingyuan Li, Xing Huang, Hengyuan Zhang, Deyuan Hu, Mengwu Huo, Xiang Chen, Zhen Chen, Hualei Sun, and Meng Wang

Phys. Rev. X 16, 031072 (2026) - Published 17 September, 2026

High-pressure studies on the 1313 monolayer-trilayer polymorph of La3Ni2O7 reveal a dramatically reduced Tc of 3.6 K, proving that coupled bilayer motifs are essential for 80 K superconductivity.

Genuine and Spurious (Non-)Ergodicity in Single Particle Tracking

Wei Wang, Qing Wei, Igor M. Sokolov, Ralf Metzler, and Aleksei Chechkin

Phys. Rev. X 16, 031071 (2026) - Published 17 September, 2026

The mean-squared increment is introduced as a new statistic to characterize single-particle positional time series data, providing a more precise and unambiguous method than previous approaches to evaluating ergodicity and helping to discriminate between different classes of stochastic processes.

Exact Nematic and Mixed Magnetic Phases Driven by Competing Orders on the Pyrochlore Lattice

Niccolò Francini, Lukas Schmidt, Lukas Janssen, and Daniel Lozano-Gómez

Phys. Rev. X 16, 031070 (2026) - Published 16 September, 2026

Analysis of a frustrated pyrochlore spin model demonstrates that thermal fluctuations and parameter-dependent symmetries suppress conventional order to stabilize a magnetic nematic phase.

Pomeranchuk Instability Induced by an Emergent Higher-Order Van Hove Singularity on the Distorted Kagome Surface of Co3Sn2S2

Pranab Kumar Nag, Rajib Batabyal, Julian Ingham, Noam Morali, Hengxin Tan, Jahyun Koo, Jean Souza, Moshe Haim, Armando Consiglio, Enke Liu, Raquel Queiroz, Ronny Thomale, Binghai Yan, Claudia Felser, Nurit Avraham, and Haim Beidenkopf

Phys. Rev. X 16, 031069 (2026) - Published 15 September, 2026

Surface deformation of the kagome lattice in Co3Sn2S2 flattens saddle points into a higher-order Van Hove singularity, triggering a d-wave Pomeranchuk instability and nematic states.

Overcoming Intrinsic Material Limitations through Cavity Feedback

M. Ebrahimi, Y. Huang, V. A. S. V. Bittencourt, A. Rashedi, A. Metelmann, and J. P. Davis

Phys. Rev. X 16, 031068 (2026) - Published 14 September, 2026

Active dissipation control via a feedback loop overcomes intrinsic magnetic losses, achieving strong coupling among photons, magnons, and phonons in cavity magnomechanics.

Reversibility, Chaos, and Attractors in Periodically Sheared Elastic Filaments

Francesco Bonacci, Brato Chakrabarti, Olivia du Roure, Anke Lindner, and David Saintillan

Phys. Rev. X 16, 031067 (2026) - Published 14 September, 2026

Combining experiments on actin filaments with numerical simulations, a previously unknown transition from reversible motion to intermittent, noise-driven chaos in single semiflexible filaments under periodic shear is unveiled.

Emergent Altermagnetism at Surfaces of Antiferromagnets: Full Symmetry Classification and Material Identification

Colin Lange, Rodrigo Jaeschke-Ubiergo, Atasi Chakraborty, Xanthe H. Verbeek, Libor Šmejkal, Jairo Sinova, and Alexander Mook

Phys. Rev. X 16, 031066 (2026) - Published 11 September, 2026

A theoretical surface spin-group framework demonstrates that surface symmetry breaking in conventional antiferromagnets naturally induces two-dimensional altermagnetism across more than 150 candidate materials.

Geometrically Frustrated Quadrupoles on the Pyrochlore Lattice and Generalized Spin Liquids

Kristian Tyn Kai Chung, Sylvain Petit, Julien Robert, and Paul McClarty

Phys. Rev. X 16, 031065 (2026) - Published 11 September, 2026

A semiclassical framework models quantum quadrupoles as biaxial tensors, showing how angular-momentum-dependent geometries dictate generalized nematic phases and quadrupolar spin liquids in frustrated magnets.

Effective Ionic Valence and Local Magnetic Moment in Kagome Superconductors

Ruoshi Jiang, Zi-Jian Lang, Yuzki Oey, Andrea Capa Salinas, Stephen D. Wilson, Yongwei Li, Ilya Shipulin, Yiwen Zhang, Deng Hu, Zhiwei Wang, Hans-Henning Klauss, Zurab Guguchia, Vadim Grinenko, and Wei Ku

Phys. Rev. X 16, 031064 (2026) - Published 10 September, 2026

Revealing concealed ionic local moments in kagome superconductors reflects strong local correlations.

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