Electronic measurements of entropy in meso- and nanoscale systems

Fuente: arXiv
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Autori principali: Pyurbeeva, Eugenia, Mol, Jan A., Gehring, Pascal
Natura: Preprint
Pubblicazione: 2022
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author Pyurbeeva, Eugenia
Mol, Jan A.
Gehring, Pascal
author_facet Pyurbeeva, Eugenia
Mol, Jan A.
Gehring, Pascal
contents Entropy is one of the most fundamental quantities in physics. For systems with few degrees of freedom, the value of entropy provides a powerful insight into its microscopic dynamics, such as the number, degeneracy and relative energies of electronic states, the value of spin, degree of localisation and entanglement, and the emergence of exotic states such as non-Abelian anyons. As the size of a system decreases, the conventional methods for measuring entropy, based on heat capacity, quickly become infeasible due to the requirement of increasingly accurate measurements of heat. Several methods to directly measure entropy of mesoscopic quantum systems have recently been developed. These methods use electronic measurements of charge, conductance and thermocurrent, rather than heat, and have been successfully applied to a wide range of systems, from quantum dots and molecules, to quantum Hall states and twisted bilayer graphene. In this Review, we provide an overview of electronic direct entropy measurement methods, discuss their theoretical background, compare their ranges of applicability and look into the directions for their future extensions and applications.
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id arxiv_https___arxiv_org_abs_2206_05793
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Electronic measurements of entropy in meso- and nanoscale systems
Pyurbeeva, Eugenia
Mol, Jan A.
Gehring, Pascal
Mesoscale and Nanoscale Physics
Entropy is one of the most fundamental quantities in physics. For systems with few degrees of freedom, the value of entropy provides a powerful insight into its microscopic dynamics, such as the number, degeneracy and relative energies of electronic states, the value of spin, degree of localisation and entanglement, and the emergence of exotic states such as non-Abelian anyons. As the size of a system decreases, the conventional methods for measuring entropy, based on heat capacity, quickly become infeasible due to the requirement of increasingly accurate measurements of heat. Several methods to directly measure entropy of mesoscopic quantum systems have recently been developed. These methods use electronic measurements of charge, conductance and thermocurrent, rather than heat, and have been successfully applied to a wide range of systems, from quantum dots and molecules, to quantum Hall states and twisted bilayer graphene. In this Review, we provide an overview of electronic direct entropy measurement methods, discuss their theoretical background, compare their ranges of applicability and look into the directions for their future extensions and applications.
title Electronic measurements of entropy in meso- and nanoscale systems
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2206.05793