Highlights

Quantum-State-Controlled Collisions of Ultracold Polyatomic Molecules

Nathaniel B. Vilas, Paige Robichaud, Christian Hallas, Junheng Tao, Loïc Anderegg, Grace K. Li, Hana Lampson, Lucie D. Augustovičová, John L. Bohn, and John M. Doyle

Phys. Rev. X 16, 021001 (2026) - Published 1 April, 2026

Ultracold collisions between polyatomic molecules are observed and characterized, revealing how their unique internal structure can be used to shield them from loss.

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.

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.

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.

Unifying Same- and Different-Material Particle Charging through Stochastic Scaling

Holger Grosshans, Gizem Ozler, Vyshnavi Veeravalli, and Simon Jantač

Phys. Rev. X 16, 011023 (2026) - Published 11 February, 2026

A model that predicts charging for different types of small particle collisions enables realistic simulations of electrostatic effects.

Second-Order Microscopic Nonlinear Optical Susceptibility in a Centrosymmetric Material: Application to Imaging Valence Electron Motion

Chance Ornelas-Skarin, Tatiana Bezriadina, Matthias Fuchs, Shambhu Ghimire, J. B. Hastings, Quynh L. Nguyen, Gilberto de la Peña, Takahiro Sato, Sharon Shwartz, Mariano Trigo, Diling Zhu, Daria Popova-Gorelova, and David A. Reis

Phys. Rev. X 16, 011006 (2026) - Published 7 January, 2026

Nonlinear x-ray diffraction is used to isolate the valence electron density in silicon, demonstrating a powerful imaging technique useful across a range of complex materials.

Particle Sweeping and Collection by Active and Living Filaments

R. Sinaasappel, K. R. Prathyusha, H. Tuazon, E. Mirzahossein, P. Illien, S. Bhamla, and A. Deblais

Phys. Rev. X 16, 011003 (2026) - Published 5 January, 2026

Active filaments collect nearby particles through sweeping motions driven by body bending. The size of the resulting clusters follows a simple geometric rule set by filament length and flexibility that unifies living, robotic, and simulated systems.

Closed-Loop Control of Active Nematic Flows

Katsu Nishiyama, John Berezney, Michael M. Norton, Akshit Aggarwal, Saptorshi Ghosh, Zahra Zarei, Michael F. Hagan, Seth Fraden, and Zvonimir Dogic

Phys. Rev. X 15, 041053 (2025) - Published 19 December, 2025

A feedback-controlled, light-responsive system regulates the chaotic motion of active fluids, maintaining steady flow speeds despite disturbances and enabling precise control over their dynamic behavior.

Kolmogorov-Arnold Networks Meet Science

Ziming Liu, Max Tegmark, Pingchuan Ma, Wojciech Matusik, and Yixuan Wang

Phys. Rev. X 15, 041051 (2025) - Published 17 December, 2025

Kolmogorov-Arnold networks combine the predictive strength of deep learning with the interpretability of symbolic formulas, enabling AI systems to both validate physical laws and generate new scientific insights.

Bond-Network Entropy Governs Heat Transport in Coordination-Disordered Solids

Kamil Iwanowski, Gábor Csányi, and Michele Simoncelli

Phys. Rev. X 15, 041041 (2025) - Published 4 December, 2025

A new framework linking atomic disorder to thermal conductivity shows how variations in atomic bonding networks control heat flow in materials that are partly crystalline and partly glassy.

Repeated Ancilla Reuse for Logical Computation on a Neutral Atom Quantum Computer

J. A. Muniz et al.

Phys. Rev. X 15, 041040 (2025) - Published 4 December, 2025

A neutral-atom quantum computing system that can repeatedly measure, reuse, and replace ancilla qubits without disrupting others enables longer computations and advances scalable, fault-tolerant operation.

A Polynomial-Time Classical Algorithm for Noisy Quantum Circuits

Thomas Schuster, Chao Yin, Xun Gao, and Norman Y. Yao

Phys. Rev. X 15, 041018 (2025) - Published 3 November, 2025

A new classical algorithm shows that noise restricts non-error-corrected quantum computational power more generally than previously recognized.

Emergent Dynamics of Active Elastic Microbeams

Q. Martinet, Y. I. Li, A. Aubret, E. Hannezo, and J. Palacci

Phys. Rev. X 15, 041017 (2025) - Published 31 October, 2025

Active solids—elastic materials built from energy-consuming parts—in the shape of microbeams rotate or oscillate and reveal tunable lifelike motion, paving the way for adaptive, shape-shifting materials and microscopic machines.

Entangled Dual-Comb Spectroscopy

Abdulkarim Hariri, Shuai Liu, Haowei Shi, Quntao Zhuang, Xudong Fan, and Zheshen Zhang

Phys. Rev. X 15, 041009 (2025) - Published 15 October, 2025

Entangled dual-comb spectroscopy combines a classical comb with an entangled quantum comb to suppress photon noise, achieving faster, more precise measurements than classical methods and enabling advanced sensing and metrology applications.

Radon Removal in XENONnT down to the Solar Neutrino Level

E. Aprile et al. (XENON Collaboration)

Phys. Rev. X 15, 031079 (2025) - Published 30 September, 2025

Using advanced cryogenic distillation, the XENONnT experiment cuts radon levels in its 10-tonne liquid xenon detector to just 430 atoms per tonne, enabling ultrapure conditions for detecting faint dark matter signals.

Teleportation and Entanglement Swapping of Continuous Quantum Variables of Microwave Radiation

Baleegh Abdo, William Shanks, Oblesh Jinka, J. R. Rozen, and Jason Orcutt

Phys. Rev. X 15, 031075 (2025) - Published 25 September, 2025

A superconducting Josephson mixer generates continuous-variable entanglement between microwave modes, enabling teleportation and entanglement swapping with fidelities beyond classical limits—key steps toward scalable quantum networks.

Quantum Effects in Gravity Beyond the Newton Potential from a Delocalized Quantum Source

Lin-Qing Chen and Flaminia Giacomini

Phys. Rev. X 15, 031063 (2025) - Published 4 September, 2025

New predictions from linearized quantum gravity show that delocalized sources and gravitational-field commutators could offer stronger evidence for future experiments that gravity is inherently quantum.

Operating Semiconductor Qubits without Individual Barrier Gates

Alexander S. Ivlev, Damien R. Crielaard, Marcel Meyer, William I. L. Lawrie, Nico W. Hendrickx, Amir Sammak, Yuta Matsumoto, Lieven M. K. Vandersypen, Giordano Scappucci, Corentin Déprez, and Menno Veldhorst

Phys. Rev. X 15, 031042 (2025) - Published 14 August, 2025

A new method for controlling spin qubits in quantum dots reduces wiring complexity by tuning qubit energy levels instead of individual barriers, enabling scalable architectures without sacrificing performance.

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