Quantum Simulation of Ultrafast Dynamics Using Trapped Ultracold Atoms
Abstract
Ultrafast electronic dynamics are typically studied using pulsed lasers. We demonstrate a complementary experimental approach: quantum simulation of ultrafast dynamics using trapped ultracold atoms. Counter-intuitively, this technique emulates some of the fastest processes in atomic physics with some of the slowest, leading to a temporal magnification factor of up to twelve orders of magnitude. In these experiments, time-varying forces on neutral atoms in the ground state of a tunable optical trap emulate the electric fields of a pulsed laser acting on bound charged particles. We demonstrate the correspondence with ultrafast science by a sequence of experiments: nonlinear spectroscopy of a many-body bound state, control of the excitation spectrum by potential shaping, observation of sub-cycle unbinding dynamics during strong few-cycle pulses, and direct measurement of carrier-envelope phase dependence of the response to an ultrafast-equivalent pulse. These results establish cold atom quantum simulation as a complementary tool for studying ultrafast dynamics.
Cite
@article{arxiv.1711.02654,
title = {Quantum Simulation of Ultrafast Dynamics Using Trapped Ultracold Atoms},
author = {Ruwan Senaratne and Shankari V. Rajagopal and Toshihiko Shimasaki and Peter E. Dotti and Kurt M. Fujiwara and Kevin Singh and Zachary A. Geiger and David M. Weld},
journal= {arXiv preprint arXiv:1711.02654},
year = {2018}
}
Comments
8 pages, 6 figures