Quantum Criticality from in-situ Density Imaging
Abstract
We perform large-scale Quantum Monte Carlo (QMC) simulations for strongly interacting bosons in a 2D optical lattice trap, and confirm an excellent agreement with the benchmarking in-situ density measurements by the Chicago group [1]. We further present a general finite temperature phase diagram both for the uniform and the trapped systems, and demonstrate how the universal scaling properties near the superfluid(SF)-to-Mott insulator(MI) transition can be observed by analysing the in-situ density profile. The characteristic temperature to find such quantum criticality is estimated to be of the order of the single-particle bandwidth, which should be achievable in the present or near future experiments. Finally, we examine the validity regime of the local fluctuation-dissipation theorem (FDT), which can be a used as a thermometry in the strongly interacting regime.
Cite
@article{arxiv.1009.5155,
title = {Quantum Criticality from in-situ Density Imaging},
author = {Shiang Fang and Chia-Ming Chung and Ping Nang Ma and Pochung Chen and Daw-Wei Wang},
journal= {arXiv preprint arXiv:1009.5155},
year = {2011}
}
Comments
4 pages