Recent Articles

Continuous Variable Measurement-Device-Independent Quantum Certification

B. L. Larsen, A. A. E. Hajomer, P. Abiuso, S. Izumi, T. Gehring, J. S. Neergaard-Nielsen, A. Acín, and U. L. Andersen

Phys. Rev. X 16, 011070 (2026) - Published 30 March, 2026

Researchers demonstrate a measurement-device-independent certification for continuous-variable systems. By using coherent states, they show that entanglement and memory can be verified even with untrusted hardware.

Fermion Quantum Criticality far from Equilibrium

Rohan Mittal, Tom Zander, Johannes Lang, and Sebastian Diehl

Phys. Rev. X 16, 011069 (2026) - Published 30 March, 2026

A new nonequilibrium universality class for fermions is identified. It displays an emergent “dark state symmetry” that protects quantum criticality, requiring only a single tuning parameter.

Hydrostatic Pressure-Enhanced Correlated Magnetism and Chern Insulator in Moiré WSe2

Pengfei Jiao et al.

Phys. Rev. X 16, 011068 (2026) - Published 27 March, 2026

Hydrostatic pressure acts as a reversible control knob in twisted WSe2 to enhance ferromagnetism and drive topological phase transitions between Chern and Mott insulating states.

Fast Scrambling at the Boundary

Ancel Larzul, Anirvan M. Sengupta, Antoine Georges, and Marco Schirò

Phys. Rev. X 16, 011067 (2026) - Published 26 March, 2026

Researchers find that a simple boundary quantum spin in the multichannel Kondo model can scramble information as fast as the most complex random systems, revealing a link between impurity physics and fast scramblers.

Deterministic 1D Domain Wall Motion with Nucleation-Free Nature in Sliding Ferroelectric Switching

Jiangang Chen, Changming Ke, Renji Bian, Er Pan, Peter Kun, Zefen Li, Biao Dong, Fan Yang, Qing Liu, Levente Tapaszto, Xiao Luo, Shi Liu, and Fucai Liu

Phys. Rev. X 16, 011066 (2026) - Published 26 March, 2026

Sliding ferroelectrics possess a nucleation-free nature, where collective and constrained domain wall motion enables deterministic polarization control far beyond conventional ferroelectrics.

Resource-Theoretical Unification of Mpemba Effects: Classical and Quantum

Alessandro Summer, Mattia Moroder, Laetitia P. Bettmann, Xhek Turkeshi, Iman Marvian, and John Goold

Phys. Rev. X 16, 011065 (2026) - Published 25 March, 2026

A unified theory of Mpemba effects across a variety of contexts is provided using resource theories. Faster relaxation occurs when states with a larger amount of resources have a smaller overlap with the slowest resourceful relaxation channel.

Cooperative Charge Ordering Signature of Trimer Molecules in Infinite-Layer CaCoO2

J.-S. Lee, W. J. Kim, A. Khandelwal, K.-T. Ko, H. Lee, C.-T. Kuo, S. Song, C. Song, D. Jang, H. Choi, G. Park, S.-Y. Park, G. Kang, H. Jang, P. Abdollahi, A. Seo, C.-C. Kao, and H. Y. Hwang

Phys. Rev. X 16, 011064 (2026) - Published 24 March, 2026

Resonant x-ray scattering in CaCoO2 reveals a quasi-three-dimensional trimer charge order linked to interlayer orbital hybridization, establishing molecular units as key organizers for macroscopic electronic states.

Scalable Photonic Quantum Interconnect Platform

Daniel Riedel, Teodoro Graziosi, Zhuoxian Wang, Chawina De-Eknamkul, Alex Abulnaga, Jonathan Dietz, Andrea Mucchietto, Michael Haas, Madison Sutula, Pierre Barral, Matteo Pompili, Mouktik Raha, Carsten Robens, Jeonghoon Ha, Denis Sukachev, David Levonian, Mihir Bhaskar, Matthew Markham, and Bartholomeus Machielse

Phys. Rev. X 16, 011063 (2026) - Published 24 March, 2026

A wafer-scale platform integrating high-quality diamond membranes with functionalized silicon substrates enables the parallel fabrication of quantum memory arrays with near-unity yield, paving the way for the mass production of modular quantum interconnects.

Slow Quasiparticle Dynamics and Anyonic Statistics in a Fractional Quantum Hall Fabry-Pérot Interferometer

Noah L. Samuelson, Liam A. Cohen, Will Wang, Simon Blanch, Takashi Taniguchi, Kenji Watanabe, Michael P. Zaletel, and Andrea F. Young

Phys. Rev. X 16, 011062 (2026) - Published 23 March, 2026

Anyons, collective excitations of fractional quantum Hall systems, are shown to exhibit unprecedented stability in graphene heterostructures, enabling their practical manipulation for use in fault-tolerant quantum computing.

Observation of Anomalous Floquet Non-Abelian Topological Insulators

Huahui Qiu, Shuaishuai Tong, Qicheng Zhang, Kun Zhang, and Chunyin Qiu

Phys. Rev. X 16, 011061 (2026) - Published 20 March, 2026

An anomalous Floquet non-Abelian topological insulator is realized in an acoustic system, exhibiting robust edge states across all band gaps, despite a trivial bulk charge, and unique topological interface modes arising from noncommutative dynamics.

High-Fidelity Control of a C13 Nuclear Spin Coupled to a Tin-Vacancy Center in Diamond

Jeremias Resch, Ioannis Karapatzakis, Mohamed Elshorbagy, Marcel Schrodin, Philipp Fuchs, Philipp Graßhoff, Luis Kussi, Christoph Sürgers, Cyril Popov, Christoph Becher, Wolfgang Wernsdorfer, and David Hunger

Phys. Rev. X 16, 011060 (2026) - Published 19 March, 2026

High-fidelity control of a 13C nuclear spin coupled to a tin-vacancy center yields coherence times exceeding 1.35 s using a superconducting waveguide, highlighting the potential of the tin-vacancy center as a coherent spin-photon interface for future quantum network applications.

Superconductivity via Paramagnon and Magnon Exchange in a 2D Near-Ferromagnetic Full Metal and Ferromagnetic Half-Metal

Zachary M. Raines and Andrey V. Chubukov

Phys. Rev. X 16, 011059 (2026) - Published 18 March, 2026

Theoretical analysis of two-dimensional electron systems shows that magnon-mediated interactions drive robust p-wave superconductivity within a ferromagnetically order state at a temperature significantly higher than in a paramagnetic state.

Fast Sideband Control of a Multimode Cavity Memory with Weak Dispersive Coupling to a Transmon

Jordan Huang, Thomas J. DiNapoli, Gavin Rockwood, Ming Yuan, Prathyankara Narasimhan, Eesh Gupta, Mustafa Bal, Francesco Crisa, Sabrina Garattoni, Yao Lu, Liang Jiang, and Srivatsan Chakram

Phys. Rev. X 16, 011058 (2026) - Published 17 March, 2026

Researchers use fast “sideband control” to swap quantum information between a processor and a superconducting-cavity memory far faster than traditional dispersive methods, even when the two are only weakly coupled. This enables robust encoding gates and reliable quantum storage in high-quality superconducting cavities.

Persistent Spin Currents in Superconducting Altermagnets

Kyle Monkman, Joan Weng, Niclas Heinsdorf, Alberto Nocera, Yafis Barlas, and Marcel Franz

Phys. Rev. X 16, 011057 (2026) - Published 16 March, 2026

Persistent spin currents in superconducting altermagnets offer a dissipationless mechanism for spin transport that could enable the development of high-efficiency spintronic computer chips.

Stabilization of Cat-State Manifolds Using Nonlinear Reservoir Engineering

Ivan Rojkov, Matteo Simoni, Elias Zapusek, Florentin Reiter, and Jonathan Home

Phys. Rev. X 16, 011056 (2026) - Published 13 March, 2026

A nonlinear reservoir engineering approach is proposed, enabling the stabilization and error correction of multicomponent Schrödinger cat manifolds through the destructive interference of nonlinear gain and loss processes.

Superconductivity from Spin-Canting Fluctuations in Rhombohedral Graphene

Zhiyu Dong, Étienne Lantagne-Hurtubise, and Jason Alicea

Phys. Rev. X 16, 011055 (2026) - Published 12 March, 2026

A study predicts that soft magnon modes arising from spin-canting order can give rise to Cooper pairing in spin-orbit-proximitized rhombohedral graphene, naturally accounting for various experimentally observed trends.

Topological Stabilizer Models on Continuous Variables

Julio C. Magdalena de la Fuente, Tyler D. Ellison, Meng Cheng, and Dominic J. Williamson

Phys. Rev. X 16, 011054 (2026) - Published 11 March, 2026

Researchers develop topological stabilizer codes that leverage infinite-dimensional local degrees of freedom. These codes realize quantum phases with universal properties that go beyond discrete variable stabilizer codes.

Dimensionality Tuning of Heavy-Fermion States in Ultrathin CeSi2 Films

Yi Wu, Weifan Zhu, Teng Hua, Yuan Fang, Yanan Zhang, Jiawen Zhang, Yanen Huang, Hao Zheng, Shanyin Fu, Xinying Zheng, Zhengtai Liu, Mao Ye, Ye Chen, Tulai Sun, Michael Smidman, Johann Kroha, Chao Cao, Huiqiu Yuan, Frank Steglich, Hai-Qing Lin, and Yang Liu

Phys. Rev. X 16, 011053 (2026) - Published 10 March, 2026

Thickness-dependent studies of CeSi2 films reveal that the transition from three to two dimensions suppresses crystal electric field excitations and reduces the effective Kondo energy in heavy-fermion systems.

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.

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