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Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study

MXene monolayers have received increasing attention due to their unique properties, particularly their high conductivity, which shows great potential in thermoelectric materials. In this paper, we present a theoretical study of the thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolay...

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Detalles Bibliográficos
Autores principales: Yan, Xinxin, Cao, Wei, Li, Haohuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10275274/
https://www.ncbi.nlm.nih.gov/pubmed/37333791
http://dx.doi.org/10.1039/d3ra02835f
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author Yan, Xinxin
Cao, Wei
Li, Haohuan
author_facet Yan, Xinxin
Cao, Wei
Li, Haohuan
author_sort Yan, Xinxin
collection PubMed
description MXene monolayers have received increasing attention due to their unique properties, particularly their high conductivity, which shows great potential in thermoelectric materials. In this paper, we present a theoretical study of the thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers, taking electron–phonon coupling into consideration. Owing to their similar geometrical structures, electronic band structures, and phonon dispersions, X(3)N(2)O(2) MXene monolayers exhibit homogeneous electron and phonon transport properties. The conduction band shows multi-valley characteristics which leads to better n-type electron transport properties than p-type ones. The maximum values of the n-type power factor can reach 32 μW cm(−1) K(−2) for the Hf(3)N(2)O(2) monolayer and 23 μW cm(−1) K(−2) for the Zr(3)N(2)O(2) monolayer. In terms of phonon transport, the lattice thermal conductivity for the Zr(3)N(2)O(2) monolayer is higher than that for the Hf(3)N(2)O(2) monolayer, due to larger phonon group velocity. Our results show that the Hf(3)N(2)O(2) monolayer is more suitable for thermoelectric materials than the Zr(3)N(2)O(2) monolayer, with optimal n-type thermoelectric figure of merit (ZT) values of 0.36 and 0.15 at 700 K, respectively. These findings may be useful for the development of wearable thermoelectric devices and sensor applications based on X(3)N(2)O(2) MXene monolayers.
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spelling pubmed-102752742023-06-17 Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study Yan, Xinxin Cao, Wei Li, Haohuan RSC Adv Chemistry MXene monolayers have received increasing attention due to their unique properties, particularly their high conductivity, which shows great potential in thermoelectric materials. In this paper, we present a theoretical study of the thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers, taking electron–phonon coupling into consideration. Owing to their similar geometrical structures, electronic band structures, and phonon dispersions, X(3)N(2)O(2) MXene monolayers exhibit homogeneous electron and phonon transport properties. The conduction band shows multi-valley characteristics which leads to better n-type electron transport properties than p-type ones. The maximum values of the n-type power factor can reach 32 μW cm(−1) K(−2) for the Hf(3)N(2)O(2) monolayer and 23 μW cm(−1) K(−2) for the Zr(3)N(2)O(2) monolayer. In terms of phonon transport, the lattice thermal conductivity for the Zr(3)N(2)O(2) monolayer is higher than that for the Hf(3)N(2)O(2) monolayer, due to larger phonon group velocity. Our results show that the Hf(3)N(2)O(2) monolayer is more suitable for thermoelectric materials than the Zr(3)N(2)O(2) monolayer, with optimal n-type thermoelectric figure of merit (ZT) values of 0.36 and 0.15 at 700 K, respectively. These findings may be useful for the development of wearable thermoelectric devices and sensor applications based on X(3)N(2)O(2) MXene monolayers. The Royal Society of Chemistry 2023-06-16 /pmc/articles/PMC10275274/ /pubmed/37333791 http://dx.doi.org/10.1039/d3ra02835f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Yan, Xinxin
Cao, Wei
Li, Haohuan
Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study
title Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study
title_full Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study
title_fullStr Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study
title_full_unstemmed Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study
title_short Thermoelectric properties of X(3)N(2)O(2) (X = Hf, Zr) MXene monolayers: a first-principles study
title_sort thermoelectric properties of x(3)n(2)o(2) (x = hf, zr) mxene monolayers: a first-principles study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10275274/
https://www.ncbi.nlm.nih.gov/pubmed/37333791
http://dx.doi.org/10.1039/d3ra02835f
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