English

Non-interacting fermions at finite temperature in a $d$-dimensional trap: universal correlations

Statistical Mechanics 2016-12-20 v1 Disordered Systems and Neural Networks Quantum Gases Mathematical Physics math.MP Probability

Abstract

We study a system of NN non-interacting spin-less fermions trapped in a confining potential, in arbitrary dimensions dd and arbitrary temperature TT. The presence of the trap introduces an edge where the average density of fermions vanishes. Far from the edge, near the center of the trap (the so called "bulk regime"), physical properties of the fermions have traditionally been understood using the Local Density Approximation. However, this approximation drastically fails near the edge where the density vanishes. In this paper we show that, even near the edge, novel universal properties emerge, independently of the details of the confining potential. We show that for large NN, these fermions in a confining trap, in arbitrary dimensions and at finite temperature, form a determinantal point process. As a result, any nn-point correlation function can be expressed as an n×nn \times n determinant whose entry is called the kernel. Near the edge, we derive the large NN scaling form of the kernels. In d=1d=1 and T=0T=0, this reduces to the so called Airy kernel, that appears in the Gaussian Unitary Ensemble (GUE) of random matrix theory. In d=1d=1 and T>0T>0 we show a remarkable connection between our kernel and the one appearing in the 1+11+1-dimensional Kardar-Parisi-Zhang equation at finite time. Consequently our result provides a finite TT generalization of the Tracy-Widom distribution, that describes the fluctuations of the rightmost fermion at T=0T=0. In d>1d>1 and T0T \geq 0, while the connection to GUE no longer holds, the process is still determinantal whose analysis provides a new class of kernels, generalizing the 1d1d Airy kernel at T=0T=0 obtained in random matrix theory. Some of our finite temperature results should be testable in present-day cold atom experiments, most notably our detailed predictions for the temperature dependence of the fluctuations near the edge.

Keywords

Cite

@article{arxiv.1609.04366,
  title  = {Non-interacting fermions at finite temperature in a $d$-dimensional trap: universal correlations},
  author = {David S. Dean and Pierre Le Doussal and Satya N. Majumdar and Gregory Schehr},
  journal= {arXiv preprint arXiv:1609.04366},
  year   = {2016}
}

Comments

55 pages, 8 figures