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Chaos-assisted tunneling resonances in a synthetic Floquet superlattice

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arxiv 2003.10387 v1 pith:BFTDQ3QC submitted 2020-03-23 cond-mat.quant-gas quant-ph

classification cond-mat.quant-gasquant-ph
keywords quantumtunnelingchaos-assistedislandsresonancesstateschaoticcontrol
verification ladder T0 review T1 audit T2 compute T3 formal
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The field of quantum simulation, which aims at using a tunable quantum system to simulate another, has been developing fast in the past years as an alternative to the all-purpose quantum computer. In particular, the use of temporal driving has attracted a huge interest recently as it was shown that certain fast drivings can create new topological effects, while a strong driving leads to e.g. Anderson localization physics. In this work, we focus on the intermediate regime to observe a quantum chaos transport mechanism called chaos-assisted tunneling which provides new possibilities of control for quantum simulation. Indeed, this regime generates a rich classical phase space where stable trajectories form islands surrounded by a large sea of unstable chaotic orbits. This mimics an effective superlattice for the quantum states localized in the regular islands, with new controllable tunneling properties. Besides the standard textbook tunneling through a potential barrier, chaos-assisted tunneling corresponds to a much richer tunneling process where the coupling between quantum states located in neighboring regular islands is mediated by other states spread over the chaotic sea. This process induces sharp resonances where the tunneling rate varies by orders of magnitude over a short range of parameters. We experimentally demonstrate and characterize these resonances for the first time in a quantum system. This opens the way to new kinds of quantum simulations with long-range transport and new types of control of quantum systems through complexity.

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Cited by 1 Pith paper

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  1. Quantum chaos on the separatrix of the periodically perturbed Harper model

    quant-ph 2024-12 conditional novelty 6.0 of 10

    A quantum expression derived from the interaction-picture perturbation theory estimates the energy width of the chaotic separatrix layer in the periodically perturbed Harper model.

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