Reinforcement-learning-based matter-wave interferometer in a shaken optical lattice

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Abstract

We demonstrate the design of a matter-wave interferometer to measure acceleration in one dimension with high precision. The system we base this on consists of ultracold atoms in an optical lattice potential created by interfering laser beams. Our approach uses reinforcement learning, a branch of machine learning that generates the protocols needed to realize lattice-based analogs of optical components including a beam splitter, a mirror, and a recombiner. The performance of these components is evaluated by comparison with their optical analogs. The interferometer's sensitivity to acceleration is quantitatively evaluated using a Bayesian statistical approach. We find the sensitivity to surpass that of standard Bragg interferometry, demonstrating the future potential for this design methodology.

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APA

Chih, L. Y., & Holland, M. (2021). Reinforcement-learning-based matter-wave interferometer in a shaken optical lattice. Physical Review Research, 3(3). https://doi.org/10.1103/PhysRevResearch.3.033279

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