Identification of quantum scars via phase-space localization measures
Abstract
There is no unique way to quantify the degree of delocalization of quantum states in unbounded continuous spaces. In this work, we explore a recently introduced localization measure that quantifies the portion of the classical phase space occupied by a quantum state. The measure is based on the -moments of the Husimi function and is known as the R\'enyi occupation of order . With this quantity and random pure states, we find a general expression to identify states that are maximally delocalized in phase space. Using this expression and the Dicke model, which is an interacting spin-boson model with an unbounded four-dimensional phase space, we show that the R\'enyi occupations with are highly effective at revealing quantum scars. Furthermore, by analyzing the high moments () of the Husimi function, we are able to identify qualitatively and quantitatively the unstable periodic orbits that scar some of the eigenstates of the model.
Cite
@article{arxiv.2107.06894,
title = {Identification of quantum scars via phase-space localization measures},
author = {Saúl Pilatowsky-Cameo and David Villaseñor and Miguel A. Bastarrachea-Magnani and Sergio Lerma-Hernández and Lea F. Santos and Jorge G. Hirsch},
journal= {arXiv preprint arXiv:2107.06894},
year = {2022}
}
Comments
13 pages, 3 figures