Fluctuations of observables for free fermions in a harmonic trap at finite temperature

We study a system of 1D noninteracting spinless fermions in a confining trap at finite temperature. We first derive a useful and general relation for the fluctuations of the occupation numbers valid for arbitrary confining trap, as well as for both canonical and grand canonical ensembles. Using t...

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Main Author: Aurélien Grabsch, Satya N. Majumdar, Grégory Schehr, Christophe Texier
Format: Article
Language:English
Published: SciPost 2018-03-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.4.3.014
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spelling doaj-63997376c6ff4aa1804c77ed02b9f0a32020-11-24T20:43:34ZengSciPostSciPost Physics2542-46532018-03-014301410.21468/SciPostPhys.4.3.014Fluctuations of observables for free fermions in a harmonic trap at finite temperatureAurélien Grabsch, Satya N. Majumdar, Grégory Schehr, Christophe TexierWe study a system of 1D noninteracting spinless fermions in a confining trap at finite temperature. We first derive a useful and general relation for the fluctuations of the occupation numbers valid for arbitrary confining trap, as well as for both canonical and grand canonical ensembles. Using this relation, we obtain compact expressions, in the case of the harmonic trap, for the variance of certain observables of the form of sums of a function of the fermions' positions, $\mathcal{L}=\sum_n h(x_n)$. Such observables are also called linear statistics of the positions. As anticipated, we demonstrate explicitly that these fluctuations do depend on the ensemble in the thermodynamic limit, as opposed to averaged quantities, which are ensemble independent. We have applied our general formalism to compute the fluctuations of the number of fermions $\mathcal{N}_+$ on the positive axis at finite temperature. Our analytical results are compared to numerical simulations. We discuss the universality of the results with respect to the nature of the confinement.https://scipost.org/SciPostPhys.4.3.014
collection DOAJ
language English
format Article
sources DOAJ
author Aurélien Grabsch, Satya N. Majumdar, Grégory Schehr, Christophe Texier
spellingShingle Aurélien Grabsch, Satya N. Majumdar, Grégory Schehr, Christophe Texier
Fluctuations of observables for free fermions in a harmonic trap at finite temperature
SciPost Physics
author_facet Aurélien Grabsch, Satya N. Majumdar, Grégory Schehr, Christophe Texier
author_sort Aurélien Grabsch, Satya N. Majumdar, Grégory Schehr, Christophe Texier
title Fluctuations of observables for free fermions in a harmonic trap at finite temperature
title_short Fluctuations of observables for free fermions in a harmonic trap at finite temperature
title_full Fluctuations of observables for free fermions in a harmonic trap at finite temperature
title_fullStr Fluctuations of observables for free fermions in a harmonic trap at finite temperature
title_full_unstemmed Fluctuations of observables for free fermions in a harmonic trap at finite temperature
title_sort fluctuations of observables for free fermions in a harmonic trap at finite temperature
publisher SciPost
series SciPost Physics
issn 2542-4653
publishDate 2018-03-01
description We study a system of 1D noninteracting spinless fermions in a confining trap at finite temperature. We first derive a useful and general relation for the fluctuations of the occupation numbers valid for arbitrary confining trap, as well as for both canonical and grand canonical ensembles. Using this relation, we obtain compact expressions, in the case of the harmonic trap, for the variance of certain observables of the form of sums of a function of the fermions' positions, $\mathcal{L}=\sum_n h(x_n)$. Such observables are also called linear statistics of the positions. As anticipated, we demonstrate explicitly that these fluctuations do depend on the ensemble in the thermodynamic limit, as opposed to averaged quantities, which are ensemble independent. We have applied our general formalism to compute the fluctuations of the number of fermions $\mathcal{N}_+$ on the positive axis at finite temperature. Our analytical results are compared to numerical simulations. We discuss the universality of the results with respect to the nature of the confinement.
url https://scipost.org/SciPostPhys.4.3.014
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