DOE OSTI · 2511323
Quantum Spin Ice in Three-Dimensional Rydberg Atom Arrays
Abstract
Quantum spin liquids are exotic phases of matter whose low-energy physics is described as the deconfined phase of an emergent gauge theory. With recent theory proposals and an experiment showing preliminary signs of Z 2 topological order [G. Semeghini , ], Rydberg atom arrays have emerged as a promising platform to realize a quantum spin liquid. In this work, we propose a way to realize a U(1) quantum spin liquid in three spatial dimensions, described by the deconfined phase of U(1) gauge theory in a pyrochlore lattice Rydberg atom array. We study the ground state phase diagram of the proposed Rydberg system as a function of experimentally relevant parameters. Within our calculation, we find that by tuning the Rabi frequency, one can access both the confinement-deconfinement transition driven by a proliferation of “magnetic” monopoles and the Higgs transition driven by a proliferation of “electric” charges of the emergent gauge theory. We suggest experimental probes for distinguishing the deconfined phase from ordered phases. This work serves as a proposal to access a confinement-deconfinement transition in three spatial dimensions on a Rydberg-based quantum simulator. Published by the American Physical Society 2025
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Shah, Jeet (ORCID:0000000158738129), Nambiar, Gautam (ORCID:0000000343058600), Gorshkov, Alexey V. (ORCID:0000000305093421), Galitski, Victor. 2025-02-06. Quantum Spin Ice in Three-Dimensional Rydberg Atom Arrays. https://doi.org/10.1103/physrevx.15.011025
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