Cargando…

Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications

Thermoelectric materials offer an unambiguous solution to the ever-increasing global demand for energy by harnessing the Seebeck effect to convert waste heat to electrical energy. Mixed-anion materials are ideal candidate thermoelectric materials due to their thermal stability and potential for “pho...

Descripción completa

Detalles Bibliográficos
Autores principales: Brlec, Katarina, Spooner, Kieran B., Skelton, Jonathan M., Scanlon, David O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9382646/
https://www.ncbi.nlm.nih.gov/pubmed/36092377
http://dx.doi.org/10.1039/d2ta04160j
_version_ 1784769328438050816
author Brlec, Katarina
Spooner, Kieran B.
Skelton, Jonathan M.
Scanlon, David O.
author_facet Brlec, Katarina
Spooner, Kieran B.
Skelton, Jonathan M.
Scanlon, David O.
author_sort Brlec, Katarina
collection PubMed
description Thermoelectric materials offer an unambiguous solution to the ever-increasing global demand for energy by harnessing the Seebeck effect to convert waste heat to electrical energy. Mixed-anion materials are ideal candidate thermoelectric materials due to their thermal stability and potential for “phonon-glass, electron-crystal” behaviour. In this study, we use density-functional theory (DFT) calculations to investigate Y(2)Ti(2)O(5)S(2), a cation-deficient Ruddlesden-Popper system, as a potential thermoelectric. We use hybrid DFT to calculate the electronic structure and band alignment, which indicate a preference for n-type doping with highly anisotropic in-plane and the out-of-plane charge-carrier mobilities as a result of the anisotropy in the crystal structure. We compute phonon spectra and calculate the lattice thermal conductivity within the single-mode relaxation-time approximation using lifetimes obtained by considering three-phonon interactions. We also calculate the transport properties using the momentum relaxation-time approximation to solve the electronic Boltzmann transport equations. The predicted transport properties and lattice thermal conductivity suggest a maximum in-plane ZT of 1.18 at 1000 K with a carrier concentration of 2.37 × 10(20) cm(−3). Finally, we discuss further the origins of the low lattice thermal conductivity, in particular exploring the possibility of nanostructuring to lower the phonon mean free path, reduce the thermal conductivity, and further enhance the ZT. Given the experimentally-evidenced high thermal stability and the favourable band alignment found in this work, Y(2)Ti(2)O(5)S(2) has the potential to be a promising high-temperature n-type thermoelectric.
format Online
Article
Text
id pubmed-9382646
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-93826462022-09-08 Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications Brlec, Katarina Spooner, Kieran B. Skelton, Jonathan M. Scanlon, David O. J Mater Chem A Mater Chemistry Thermoelectric materials offer an unambiguous solution to the ever-increasing global demand for energy by harnessing the Seebeck effect to convert waste heat to electrical energy. Mixed-anion materials are ideal candidate thermoelectric materials due to their thermal stability and potential for “phonon-glass, electron-crystal” behaviour. In this study, we use density-functional theory (DFT) calculations to investigate Y(2)Ti(2)O(5)S(2), a cation-deficient Ruddlesden-Popper system, as a potential thermoelectric. We use hybrid DFT to calculate the electronic structure and band alignment, which indicate a preference for n-type doping with highly anisotropic in-plane and the out-of-plane charge-carrier mobilities as a result of the anisotropy in the crystal structure. We compute phonon spectra and calculate the lattice thermal conductivity within the single-mode relaxation-time approximation using lifetimes obtained by considering three-phonon interactions. We also calculate the transport properties using the momentum relaxation-time approximation to solve the electronic Boltzmann transport equations. The predicted transport properties and lattice thermal conductivity suggest a maximum in-plane ZT of 1.18 at 1000 K with a carrier concentration of 2.37 × 10(20) cm(−3). Finally, we discuss further the origins of the low lattice thermal conductivity, in particular exploring the possibility of nanostructuring to lower the phonon mean free path, reduce the thermal conductivity, and further enhance the ZT. Given the experimentally-evidenced high thermal stability and the favourable band alignment found in this work, Y(2)Ti(2)O(5)S(2) has the potential to be a promising high-temperature n-type thermoelectric. The Royal Society of Chemistry 2022-07-04 /pmc/articles/PMC9382646/ /pubmed/36092377 http://dx.doi.org/10.1039/d2ta04160j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Brlec, Katarina
Spooner, Kieran B.
Skelton, Jonathan M.
Scanlon, David O.
Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications
title Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications
title_full Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications
title_fullStr Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications
title_full_unstemmed Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications
title_short Y(2)Ti(2)O(5)S(2) – a promising n-type oxysulphide for thermoelectric applications
title_sort y(2)ti(2)o(5)s(2) – a promising n-type oxysulphide for thermoelectric applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9382646/
https://www.ncbi.nlm.nih.gov/pubmed/36092377
http://dx.doi.org/10.1039/d2ta04160j
work_keys_str_mv AT brleckatarina y2ti2o5s2apromisingntypeoxysulphideforthermoelectricapplications
AT spoonerkieranb y2ti2o5s2apromisingntypeoxysulphideforthermoelectricapplications
AT skeltonjonathanm y2ti2o5s2apromisingntypeoxysulphideforthermoelectricapplications
AT scanlondavido y2ti2o5s2apromisingntypeoxysulphideforthermoelectricapplications