Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications

Dimensionality reduction has been proved as a feasible route to enhance the performance of thermoelectric materials for renewable energy applications. In this article, we investigate the effect of dimensions reduction on thermoelectric properties of GeSe using the density functional theory and Boltz...

Full description

Bibliographic Details
Published in:Ceramics International
Main Author: 2-s2.0-85065544337
Format: Article
Language:English
Published: Elsevier Ltd 2019
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85065544337&doi=10.1016%2fj.ceramint.2019.04.253&partnerID=40&md5=01a286b2fdafeffb657936d01dad421d
id Ul Haq B.; AlFaify S.; Laref A.; Ahmed R.; M. Taib M.F.
spelling Ul Haq B.; AlFaify S.; Laref A.; Ahmed R.; M. Taib M.F.
2-s2.0-85065544337
Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
2019
Ceramics International
45
12
10.1016/j.ceramint.2019.04.253
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85065544337&doi=10.1016%2fj.ceramint.2019.04.253&partnerID=40&md5=01a286b2fdafeffb657936d01dad421d
Dimensionality reduction has been proved as a feasible route to enhance the performance of thermoelectric materials for renewable energy applications. In this article, we investigate the effect of dimensions reduction on thermoelectric properties of GeSe using the density functional theory and Boltzmann transport theory based first-principles approaches. These investigations have been carried out for bulk (3D) and three polymorphs of single-layered (2D) GeSe (such as α-GeSe, β-GeSe, and γ-GeSe). Calculations of energetic stability demonstrated the 2D-GeSe as stable as the 3D-GeSe. The arrangement of bands within the electronic band structures of 3D and 2D GeSe showed them as indirect bandgap semiconductors. The β-GeSe and γ-GeSe exhibited wider energy bandgap and consequently large Seebeck coefficients than the 3D-GeSe and α-GeSe. The reduction in structural dimensions stimulated a sharp increase in electrical conductivity and Seebeck coefficient (particularly for β-GeSe and γ-GeSe) which has resulted in large power factor. The room-temperature thermoelectric figure of merit (ZT) of 3D-GeSe, α-GeSe, β-GeSe, and γ-GeSe of magnitude 1.02, 0.83, 1.00, and 1.10 respectively have typically broken the benchmark value of ZT ≈ 1. The ZT of these materials is sensitive to change in temperature and has been recorded as large as 1.72 for γ-GeSe at a low temperature of 150 K. The large power factors and ZT of single-layered GeSe reveal the dimensionality reduction as a feasible approach for enhancing the performance of thermoelectric materials for renewable energy applications. © 2019 Elsevier Ltd and Techna Group S.r.l.
Elsevier Ltd
2728842
English
Article

author 2-s2.0-85065544337
spellingShingle 2-s2.0-85065544337
Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
author_facet 2-s2.0-85065544337
author_sort 2-s2.0-85065544337
title Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
title_short Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
title_full Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
title_fullStr Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
title_full_unstemmed Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
title_sort Dimensionality reduction of germanium selenide for high-efficiency thermoelectric applications
publishDate 2019
container_title Ceramics International
container_volume 45
container_issue 12
doi_str_mv 10.1016/j.ceramint.2019.04.253
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85065544337&doi=10.1016%2fj.ceramint.2019.04.253&partnerID=40&md5=01a286b2fdafeffb657936d01dad421d
description Dimensionality reduction has been proved as a feasible route to enhance the performance of thermoelectric materials for renewable energy applications. In this article, we investigate the effect of dimensions reduction on thermoelectric properties of GeSe using the density functional theory and Boltzmann transport theory based first-principles approaches. These investigations have been carried out for bulk (3D) and three polymorphs of single-layered (2D) GeSe (such as α-GeSe, β-GeSe, and γ-GeSe). Calculations of energetic stability demonstrated the 2D-GeSe as stable as the 3D-GeSe. The arrangement of bands within the electronic band structures of 3D and 2D GeSe showed them as indirect bandgap semiconductors. The β-GeSe and γ-GeSe exhibited wider energy bandgap and consequently large Seebeck coefficients than the 3D-GeSe and α-GeSe. The reduction in structural dimensions stimulated a sharp increase in electrical conductivity and Seebeck coefficient (particularly for β-GeSe and γ-GeSe) which has resulted in large power factor. The room-temperature thermoelectric figure of merit (ZT) of 3D-GeSe, α-GeSe, β-GeSe, and γ-GeSe of magnitude 1.02, 0.83, 1.00, and 1.10 respectively have typically broken the benchmark value of ZT ≈ 1. The ZT of these materials is sensitive to change in temperature and has been recorded as large as 1.72 for γ-GeSe at a low temperature of 150 K. The large power factors and ZT of single-layered GeSe reveal the dimensionality reduction as a feasible approach for enhancing the performance of thermoelectric materials for renewable energy applications. © 2019 Elsevier Ltd and Techna Group S.r.l.
publisher Elsevier Ltd
issn 2728842
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1828987875298902016