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arXiv · 2609.31147

Rydberg-Atom-Mediated Strong Antisymmetric Spin Exchange in Molecular Arrays

Abstract

Ultracold molecular systems have recently emerged as a versatile platform for quantum computation and simulation. Spin-exchange interactions arising from direct molecular dipolar interactions constitute the key mechanism for generating quantum entanglement and simulating quantum spin models. However, the relatively small electric dipole moments result in weak spin-exchange couplings, fundamentally limiting the speed of quantum information processing and interaction cycle of many-body dynamics. Here, we introduce a framework that employs Rydberg atoms with large electric dipole moments to mediate strong interactions between molecules in optical tweezer arrays that enables individually laser addressing both the Rydberg atom and molecules. Our result reveals that the mediated coupling can realize an effective molecular spin-exchange interaction with an intrinsic Dzyaloshinskii-Moriya character, with the Rydberg atoms dynamically decoupled from the molecular degrees of freedom, and the effective interaction strength enhanced by up to three orders of magnitude. We further demonstrate its versatility through rapid entanglement generation, high-fidelity two-qubit gate operations, and the realization of non-equilibrium symmetry-protected topological phase with long-lived edge coherence. Our work establishes a route toward strong molecular spin interactions and opens opportunities for fast, scalable quantum information processing and quantum simulation of long-time non-equilibrium quantum many-body physics in optical tweezer arrays of ultracold molecules.

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BibTeXRIS

Yunqing Jiao, Jin-Zhu Jiang, Bo-Wen Guan, Jie Ma, Liantuan Xiao, Chi Zhang, Weibin Li, Feng Mei, Suotang Jia. 2026-09-25. Rydberg-Atom-Mediated Strong Antisymmetric Spin Exchange in Molecular Arrays. https://arxiv.org/abs/2609.31147

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