Entropy-Seebeck ratio as a tool for elementary charge determination

Fuente: arXiv
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Main Authors: Peña, Francisco J., Nuñez, Cesar, Castorene, Bastian, Aguilera, Michel, Cortés, Natalia, Vargas, Patricio
Format: Preprint
Published: 2025
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author Peña, Francisco J.
Nuñez, Cesar
Castorene, Bastian
Aguilera, Michel
Cortés, Natalia
Vargas, Patricio
author_facet Peña, Francisco J.
Nuñez, Cesar
Castorene, Bastian
Aguilera, Michel
Cortés, Natalia
Vargas, Patricio
contents In this work, we investigate the relationship between the Seebeck coefficient $(S)$, and the differential entropy per particle (DEP, $s$), as a tool for characterizing charge carriers in two-dimensional systems. Using armchair silicene nanoribbons as a model platform, we analyze how both quantities and their ratio depend on chemical potential at room temperature. While the Seebeck coefficient captures transport properties through the energy dependence of the electronic transmission, the DEP is directly connected to the system's electronic entropy, offering a direct thermodynamic alternative for estimating $S$. We evaluate these transport-thermodynamic properties considering diverse ribbon widths, defining metallic and semiconducting regimes. We find both quantities $S$ and $s$, are highly interconnected within the ribbon's band gap energy region, and their ratio $s/S$ converges to the elementary charge $e$ across that energy window, fulfilling the Kelvin formula $S=s/e$. On the contrary, $s/S$ is undefined for gapless ribbons in the energy window of the first transmission channel. These results establish the ratio between the DEP and the Seebeck coefficient as a reliable and complementary probe for the determination of the elementary charge, and to identify the cleanness of electronic band gaps as $s/S$ matches with $e$.
format Preprint
id arxiv_https___arxiv_org_abs_2508_15067
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Entropy-Seebeck ratio as a tool for elementary charge determination
Peña, Francisco J.
Nuñez, Cesar
Castorene, Bastian
Aguilera, Michel
Cortés, Natalia
Vargas, Patricio
Mesoscale and Nanoscale Physics
In this work, we investigate the relationship between the Seebeck coefficient $(S)$, and the differential entropy per particle (DEP, $s$), as a tool for characterizing charge carriers in two-dimensional systems. Using armchair silicene nanoribbons as a model platform, we analyze how both quantities and their ratio depend on chemical potential at room temperature. While the Seebeck coefficient captures transport properties through the energy dependence of the electronic transmission, the DEP is directly connected to the system's electronic entropy, offering a direct thermodynamic alternative for estimating $S$. We evaluate these transport-thermodynamic properties considering diverse ribbon widths, defining metallic and semiconducting regimes. We find both quantities $S$ and $s$, are highly interconnected within the ribbon's band gap energy region, and their ratio $s/S$ converges to the elementary charge $e$ across that energy window, fulfilling the Kelvin formula $S=s/e$. On the contrary, $s/S$ is undefined for gapless ribbons in the energy window of the first transmission channel. These results establish the ratio between the DEP and the Seebeck coefficient as a reliable and complementary probe for the determination of the elementary charge, and to identify the cleanness of electronic band gaps as $s/S$ matches with $e$.
title Entropy-Seebeck ratio as a tool for elementary charge determination
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2508.15067