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Published May 2023 | Published
Journal Article Open

Ab Initio Derivation of Lattice-Gauge-Theory Dynamics for Cold Gases in Optical Lattices

Abstract

We introduce a method for quantum simulation of U(1) lattice gauge theories coupled to matter, utilizing alkaline-earth(-like) atoms in state-dependent optical lattices. The proposal enables the study of both gauge and fermionic matter fields without integrating out one of them in one and two dimensions. We focus on a realistic and robust implementation that utilizes the long-lived metastable clock state available in alkaline-earth(-like) atomic species. Starting from an ab initio modeling of the experimental setting, we systematically carry out a derivation of the target U(1) gauge theory. This approach allows us to identify and address conceptual and practical challenges for the implementation of lattice gauge theories that—while pivotal for a successful implementation—have never been rigorously addressed in the literature: those include the specific engineering of lattice potentials to achieve the desired structure of Wannier functions and the subtleties involved in realizing the proper separation of energy scales to enable gauge-invariant dynamics. We discuss realistic experiments that can be carried out within such a platform using the fermionic isotope ¹⁷³Yb, addressing via simulations all key sources of imperfections, and provide concrete parameter estimates for relevant energy scales in both one- and two-dimensional settings.

Additional Information

Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI. We thank M. Burrello, G. Pagano, and E. Rico for insightful discussions, and F. Scazza for collaboration on a related work. The work of M.D., P.F., and F.S. was partly supported by the European Research Council (ERC) under Grant No. 758329, "Atomic Gauge and Entanglement Theories" (AGEnTh), and by the Ministry of Education, University and Research (MIUR) Program FARE (Entanglement di sistemi a molticorpi in sistemi quantistici programmabili). M.A. and N.D.O. acknowledge funding from the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy—EXC-2111—390814868, from the ERC under the European Union Horizon 2020 research and innovation program (Grant Agreement No. 803047), and from the German Federal Ministry of Education and Research via the funding program "Quantum Technologies—from Basic Research To Market" (Contract No. 13N15895 FermiQP). M.A. and M.D. further acknowledge funding within the QuantERA II Program, which has received funding from the European Union Horizon 2020 research and innovation program under Grant Agreement No. 101017733.

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Additional details

Created:
August 22, 2023
Modified:
October 23, 2023