Recent Articles

Thermodynamics of Active Matter: Tracking Dissipation across Scales

Robin Bebon, Joshua F. Robinson, and Thomas Speck

Phys. Rev. X 15, 021050 (2025) - Published 12 May, 2025

A new theory links microscopic energy use to large-scale behavior in active matter, revealing how dissipation links to pattern formation and offering tools to infer energy flow in synthetic and living systems.

Beyond-Hubbard Pairing in a Cuprate Ladder

Hari Padma, Jinu Thomas, Sophia F. R. TenHuisen, Wei He, Ziqiang Guan, Jiemin Li, Byungjune Lee, Yu Wang, Seng Huat Lee, Zhiqiang Mao, Hoyoung Jang, Valentina Bisogni, Jonathan Pelliciari, Mark P. M. Dean, Steven Johnston, and Matteo Mitrano

Phys. Rev. X 15, 021049 (2025) - Published 12 May, 2025

High-resolution resonant inelastic x-ray scattering reveals yet-unobserved magnetic excitations in doped cuprate ladders, indicating strong hole pairing beyond Hubbard model predictions.

Superconductivity in the Parent Infinite-Layer Nickelate NdNiO2

C. T. Parzyck, Y. Wu, L. Bhatt, M. Kang, Z. Arthur, T. M. Pedersen, R. Sutarto, S. Fan, J. Pelliciari, V. Bisogni, G. Herranz, A. B. Georgescu, D. G. Hawthorn, L. F. Kourkoutis, D. A. Muller, D. G. Schlom, and K. M. Shen

Phys. Rev. X 15, 021048 (2025) - Published 12 May, 2025

Undoped NdNiO2 exhibits superconductivity up to 11 K, challenging the assumption that doping is essential in layered nickelate superconductors.

Unifying Non-Markovian Characterization with an Efficient and Self-Consistent Framework

G. A. L. White, P. Jurcevic, C. D. Hill, and K. Modi

Phys. Rev. X 15, 021047 (2025) - Published 9 May, 2025

A general framework models and counters the complex, time- and space-correlated noise that disrupts quantum computing performance. This relies on tensor networks to boost accuracy and efficiency of estimation.

Small Polaron-Induced Ultrafast Ferroelectric Restoration in BiFeO3

Wenfan Chen, Tian Wang, Chun-Chieh Yu, Yuancheng Jing, Xiaosong Li, and Wei Xiong

Phys. Rev. X 15, 021046 (2025) - Published 8 May, 2025

Ultrafast light excitation in BiFeO3 triggers ferroelectric recovery within 0.5 ps, driven by polaron formation—not free electron relaxation. This reveals a new design principle for fast, light-responsive materials.

Isotope Substitution and Polytype Control for Point Defects Identification: The Case of the Ultraviolet Color Center in Hexagonal Boron Nitride

J. Plo, A. Pershin, S. Li, T. Poirier, E. Janzen, H. Schutte, M. Tian, M. Wynn, S. Bernard, A. Rousseau, A. Ibanez, P. Valvin, W. Desrat, T. Michel, V. Jacques, B. Gil, A. Kaminska, N. Wan, J. H. Edgar, A. Gali, and G. Cassabois

Phys. Rev. X 15, 021045 (2025) - Published 8 May, 2025

A new methodology to identify point defects in materials combines isotope substitution, polytype control, and first-principles calculations. Applied to hexagonal boron nitride, it identifies a UV color center as a carbon dimer.

Multiscale Field Theory for Network Flows

Guram Mikaberidze, Oriol Artime, Albert Díaz-Guilera, and Raissa M. D’Souza

Phys. Rev. X 15, 021044 (2025) - Published 7 May, 2025

A new theoretical framework reveals universal principles governing network flows, predicting a threshold where flow becomes unsustainable and uncovering how dissipation can enhance performance in certain systems.

Symmetry-Dependent Dielectric Screening of Optical Phonons in Monolayer Graphene

Loïc Moczko, Sven Reichardt, Aditya Singh, Xin Zhang, Elise Jouaiti, Luis E. Parra López, Joanna L. P. Wolff, Aditi Raman Moghe, Etienne Lorchat, Rajendra Singh, Kenji Watanabe, Takashi Taniguchi, Hicham Majjad, Michelangelo Romeo, Arnaud Gloppe, Ludger Wirtz, and Stéphane Berciaud

Phys. Rev. X 15, 021043 (2025) - Published 7 May, 2025

Symmetry governs the sensitivity of optical phonons in graphene to the local environment, with implications for van der Waals engineering and quantum sensing.

Theoretical Lower Limit of Coercive Field in Ferroelectric Hafnia

Jiyuan Yang, Jing Wu, Jingxuan Li, Chao Zhou, Yang Sun, Zuhuang Chen, and Shi Liu

Phys. Rev. X 15, 021042 (2025) - Published 6 May, 2025

Polarization switching in ultrathin hafnia films requires very high electric fields, limiting its use in next-generation nanoelectronics. A new type of domain-wall-driven switching in thicker films lowers those switching fields.

Topological Meron-Antimeron Domain Walls and Skyrmions in a Low-Symmetry System

Reiner Brüning, Levente Rózsa, Roberto Lo Conte, André Kubetzka, Roland Wiesendanger, and Kirsten von Bergmann

Phys. Rev. X 15, 021041 (2025) - Published 6 May, 2025

A low-symmetry system—realized in an iron layer on a tantalum substrate—shows unique topological magnetic domain walls. Nontrivial structures in these walls respond asymmetrically to magnetic fields, enabling the creation of skyrmion chains.

Realistic Ab Initio Predictions of Excimer Behavior under Collective Light-Matter Strong Coupling

Matteo Castagnola, Marcus T. Lexander, and Henrik Koch

Phys. Rev. X 15, 021040 (2025) - Published 5 May, 2025

Strong light-matter coupling can reshape chemical dynamics by altering molecular bonding pathways, as shown in a quantum model where polariton formation suppresses excimer bonding beyond a critical interaction threshold.

Coherent Phonons and Quasiparticle Renormalization in Semimetals from First Principles

Christoph Emeis, Stephan Jauernik, Sunil Dahiya, Yiming Pan, Carl E. Jensen, Petra Hein, Michael Bauer, and Fabio Caruso

Phys. Rev. X 15, 021039 (2025) - Published 5 May, 2025

A new theory linking light-induced atomic vibrations to ultrafast changes in electronic behavior offers a path to engineer the properties of semimetals using light.

Automated Discovery of Coupled-Mode Setups

Jonas Landgraf, Vittorio Peano, and Florian Marquardt

Phys. Rev. X 15, 021038 (2025) - Published 2 May, 2025

A machine-learning algorithm rapidly generates designs that can be simpler than those developed by humans.

Experimental Mode-Pairing Quantum Key Distribution Surpassing the Repeaterless Bound

Likang Zhang, Wei Li, Jiawei Pan, Yichen Lu, Wenwen Li, Zheng-Ping Li, Yizhi Huang, Xiongfeng Ma, Feihu Xu, and Jian-Wei Pan

Phys. Rev. X 15, 021037 (2025) - Published 2 May, 2025

Researchers have shown that they can distribute quantum keys under realistic conditions using commercial lasers.

Topological Rigidity and Non-Abelian Defect Junctions in Chiral Nematic Systems with Effective Biaxial Symmetry

Jin-Sheng Wu, Roberto Abril Valenzuela, Mark J. Bowick, and Ivan I. Smalyukh

Phys. Rev. X 15, 021036 (2025) - Published 1 May, 2025

Engineered boundary conditions in chiral nematic liquid crystals enable the first experimental realization of non-Abelian line defects and their networks, revealing complex, ordered interactions and rich topological behavior.

Strongly Interacting, Two-Dimensional, Dipolar Spin Ensembles in (111)-Oriented Diamond

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 15, 021035 (2025) - Published 30 April, 2025

Dense ensembles of nitrogen-vacancy centers in diamond with strong dipolar interactions and controlled dimensionality offer a new platform for advancing quantum sensing and simulation.

Modular Autonomous Virtualization System for Two-Dimensional Semiconductor Quantum Dot Arrays

Anantha S. Rao, Donovan Buterakos, Barnaby van Straaten, Valentin John, Cécile X. Yu, Stefan D. Oosterhout, Lucas Stehouwer, Giordano Scappucci, Menno Veldhorst, Francesco Borsoi, and Justyna P. Zwolak

Phys. Rev. X 15, 021034 (2025) - Published 30 April, 2025

Machine learning automates the control of a large and highly connected array of semiconductor quantum dots.

Single-Crystal Diffuse Neutron Scattering Study of the Dipole-Octupole Quantum Spin-Ice Candidate Ce2Zr2O7: No Apparent Octupolar Correlations Above T=0.05K

E. M. Smith, R. Schäfer, J. Dudemaine, B. Placke, B. Yuan, Z. Morgan, F. Ye, R. Moessner, O. Benton, A. D. Bianchi, and B. D. Gaulin

Phys. Rev. X 15, 021033 (2025) - Published 29 April, 2025

Magnetic octupolar correlations in Ce2Zr2O7 are less apparent in neutron diffraction signals than previously thought, a key insight for understanding a new family of quantum spin-ice candidate materials.

Controllable Highly Oriented Skyrmion Track Array in Bulk Fe3GaTe2

Yunhao Wang, Shiyu Zhu, Chensong Hua, Guojing Hu, Linxuan Li, Senhao Lv, Jianfeng Guo, Jiawei Hu, Runnong Zhou, Zizhao Gong, Chengmin Shen, Zhihai Cheng, Jinan Shi, Wu Zhou, Haitao Yang, Weichao Yu, Jiang Xiao, and Hong-Jun Gao

Phys. Rev. X 15, 021032 (2025) - Published 28 April, 2025

Precision control of magnetic fields facilitates the creation of skyrmion track arrays in Fe3GaTe2, paving the way for scalable, ordered skyrmion structures for energy-efficient computing and next-generation data storage.

Quantum-Enhanced Sensing of Axion Dark Matter with a Transmon-Based Single Microwave Photon Counter

C. Braggio, L. Balembois, R. Di Vora, Z. Wang, J. Travesedo, L. Pallegoix, G. Carugno, A. Ortolan, G. Ruoso, U. Gambardella, D. D’Agostino, P. Bertet, and E. Flurin

Phys. Rev. X 15, 021031 (2025) - Published 28 April, 2025

A quantum sensing technique to scan for axion dark matter using superconducting qubits boosts search speed 20-fold by circumventing quantum noise limits. This scalable approach enables dark matter experiments with unprecedented sensitivity.

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