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Multiparticle Quantum Walks and Fisher Information in One-Dimensional Lattices

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Cai, Xiaoming
Yang, Hongting
Shi, Hai-Long
Lee, Chaohong
Andrei, Natan
Guan, Xi-Wen

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American Physical Society

Abstract

Recent experiments on quantum walks (QWs) demonstrated a full control over the statistics-dependent walks of single particles and two particles in one-dimensional lattices. However, little is known about the general characterization of QWs at the many-body level. Here, we rigorously study QWs, Bloch oscillations, and the quantum Fisher information for three indistinguishable bosons and fermions in one-dimensional lattices using a time-evolving block decimation algorithm and many-body perturbation theory. We show that such strongly correlated QWs not only give rise to statistics-and-interaction-dependent ballistic transports of scattering states and of two- and three-body bound states but also allow a quantum enhanced precision measurement of the gravitational force. In contrast to the QWs of the fermions, the QWs of three bosons exhibit strongly correlated Bloch oscillations, which present a surprising time scaling t3 of the Fisher information below a characteristic time t0 and saturate to the fundamental limit of t2 for t>t0.

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Physical Review Letters

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Open Access

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