Thermoelectric Transport Driven by Quantum Distance

Fuente: arXiv
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Main Authors: Oh, Chang-geun, Kim, Kun Woo, Rhim, Jun-Won
Format: Preprint
Published: 2024
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author Oh, Chang-geun
Kim, Kun Woo
Rhim, Jun-Won
author_facet Oh, Chang-geun
Kim, Kun Woo
Rhim, Jun-Won
contents The geometric characteristics of Bloch wave functions play a crucial role in electronic transport properties. We show that the thermoelectric performance of materials is governed by the geometric structure of Bloch wave functions within the framework of the Boltzmann equation. The essential geometric notion is the Hilbert-Schmidt quantum distance, measuring the resemblance between two quantum states. We establish a geometric characterization of the scattering rate by extending the concept of quantum distance between two states in momentum space at a distance.Employing isotropic quadratic band touching semimetals, where one can concentrate on the role of quantum geometric effects other than the Berry curvature, we find that the response functions for electrical quantum transport and, therefore, the thermoelectric power factor can be succinctly expressed in terms of the maximum quantum distance, $d_\mathrm{max}$. Specifically, when $d_\mathrm{max}$ reaches one, the power factor doubles compared to the case with trivial geometry ($d_\mathrm{max}=0$). Our finding highlights the significance of quantum geometry in improving the performance of thermoelectric devices.
format Preprint
id arxiv_https___arxiv_org_abs_2408_04436
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Thermoelectric Transport Driven by Quantum Distance
Oh, Chang-geun
Kim, Kun Woo
Rhim, Jun-Won
Mesoscale and Nanoscale Physics
The geometric characteristics of Bloch wave functions play a crucial role in electronic transport properties. We show that the thermoelectric performance of materials is governed by the geometric structure of Bloch wave functions within the framework of the Boltzmann equation. The essential geometric notion is the Hilbert-Schmidt quantum distance, measuring the resemblance between two quantum states. We establish a geometric characterization of the scattering rate by extending the concept of quantum distance between two states in momentum space at a distance.Employing isotropic quadratic band touching semimetals, where one can concentrate on the role of quantum geometric effects other than the Berry curvature, we find that the response functions for electrical quantum transport and, therefore, the thermoelectric power factor can be succinctly expressed in terms of the maximum quantum distance, $d_\mathrm{max}$. Specifically, when $d_\mathrm{max}$ reaches one, the power factor doubles compared to the case with trivial geometry ($d_\mathrm{max}=0$). Our finding highlights the significance of quantum geometry in improving the performance of thermoelectric devices.
title Thermoelectric Transport Driven by Quantum Distance
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2408.04436