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arXiv · 1910.04837

Combined molecular dynamics and quantum trajectories simulation of laser-driven, collisional systems

Abstract

We introduce a combined molecular dynamics (MD) and quantum trajectories (QT) code to simulate the effects of near-resonant optical fields on state-vector evolution and particle motion in a collisional system. In contrast to collisionless systems, in which the quantum dynamics of multi-level, laser-driven particles with spontaneous emission can be described with the optical Bloch equations (OBEs), particle velocities in sufficiently collisional systems change on timescales comparable to those of the laser-induced, quantum-state dynamics. These transient velocity changes can cause the time-averaged velocity dependence of the quantum state to differ from the OBE solution. We use this multiscale code to describe laser-cooling in a strontium ultracold neutral plasma. Important phenomena described by the simulation include suppression of electromagnetically induced transparencies through rapid velocity changing collisions and thermalization between cooled and un-cooled directions for anisotropic laser cooling.

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G. M. Gorman, T. K. Langin, M. K. Warrens, D. Vrinceanu, T. C. Killian. 2019-10-10. Combined molecular dynamics and quantum trajectories simulation of laser-driven, collisional systems. https://doi.org/10.1103/physreva.101.012710

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