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arXiv · 2003.09903

Quantum boomerang effect for interacting particles

Abstract

When a quantum particle is launched with a finite velocity in a disordered potential, it may surprisingly come back to its initial position at long times and remain there forever. This phenomenon, dubbed ``quantum boomerang effect'', was introduced in [Phys. Rev. A 99, 023629 (2019)]. Interactions between particles, treated within the mean-field approximation, are shown to partially destroy the boomerang effect: the center of mass of the wave packet makes a U-turn, but does not completely come back to its initial position. We show that this phenomenon can be quantitatively interpreted using a single parameter, the average interaction energy.

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Jakub Janarek, Dominique Delande, Nicolas Cherroret, Jakub Zakrzewski. 2020-03-22. Quantum boomerang effect for interacting particles. https://doi.org/10.1103/physreva.102.013303

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