Cargando…

Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance

Crystal-phase engineering to create metastable polymorphs is an effective and powerful way to modulate the physicochemical properties and functions of semiconductor materials, but it has been rarely explored in thermoelectrics due to concerns over thermal stability. Herein, we develop a combined col...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Wanjia, Lou, Yue, Dong, Hongliang, Wu, Fanshi, Tiwari, Janak, Shi, Zhan, Feng, Tianli, Pantelides, Sokrates T., Xu, Biao
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/PMC9473540/
https://www.ncbi.nlm.nih.gov/pubmed/36277634
http://dx.doi.org/10.1039/d2sc02915d
_version_ 1784789525105475584
author Zhang, Wanjia
Lou, Yue
Dong, Hongliang
Wu, Fanshi
Tiwari, Janak
Shi, Zhan
Feng, Tianli
Pantelides, Sokrates T.
Xu, Biao
author_facet Zhang, Wanjia
Lou, Yue
Dong, Hongliang
Wu, Fanshi
Tiwari, Janak
Shi, Zhan
Feng, Tianli
Pantelides, Sokrates T.
Xu, Biao
author_sort Zhang, Wanjia
collection PubMed
description Crystal-phase engineering to create metastable polymorphs is an effective and powerful way to modulate the physicochemical properties and functions of semiconductor materials, but it has been rarely explored in thermoelectrics due to concerns over thermal stability. Herein, we develop a combined colloidal synthesis and sintering route to prepare nanostructured solids through ligand retention. Nano-scale control over the unconventional cubic-phase is realized in a high-entropy Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S (x = 0–0.25, y = 0, 0.07, 0.13) system by surface-ligand protection and size-driven phase stabilization. Different from the common monoclinic phase, the unconventional cubic-phase samples can optimize electrical and thermal properties through phase and entropy design. A high power factor (0.44 mW m(−1) K(−2)), an ultralow thermal conductivity (0.25 W m(−1) K(−1)) and a ZT value of 1.52 are achieved at 873 K for the cubic Cu(1.87)Ag(0.13)(In(0.06)Sn(0.94))Se(2)S nanostructured sample. This study highlights a new method for the synthesis of metastable phase high-entropy materials and gives insights into stabilizing the metastable phase through ligand retention in other research communities.
format Online
Article
Text
id pubmed-9473540
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-94735402022-10-20 Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance Zhang, Wanjia Lou, Yue Dong, Hongliang Wu, Fanshi Tiwari, Janak Shi, Zhan Feng, Tianli Pantelides, Sokrates T. Xu, Biao Chem Sci Chemistry Crystal-phase engineering to create metastable polymorphs is an effective and powerful way to modulate the physicochemical properties and functions of semiconductor materials, but it has been rarely explored in thermoelectrics due to concerns over thermal stability. Herein, we develop a combined colloidal synthesis and sintering route to prepare nanostructured solids through ligand retention. Nano-scale control over the unconventional cubic-phase is realized in a high-entropy Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S (x = 0–0.25, y = 0, 0.07, 0.13) system by surface-ligand protection and size-driven phase stabilization. Different from the common monoclinic phase, the unconventional cubic-phase samples can optimize electrical and thermal properties through phase and entropy design. A high power factor (0.44 mW m(−1) K(−2)), an ultralow thermal conductivity (0.25 W m(−1) K(−1)) and a ZT value of 1.52 are achieved at 873 K for the cubic Cu(1.87)Ag(0.13)(In(0.06)Sn(0.94))Se(2)S nanostructured sample. This study highlights a new method for the synthesis of metastable phase high-entropy materials and gives insights into stabilizing the metastable phase through ligand retention in other research communities. The Royal Society of Chemistry 2022-08-24 /pmc/articles/PMC9473540/ /pubmed/36277634 http://dx.doi.org/10.1039/d2sc02915d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Wanjia
Lou, Yue
Dong, Hongliang
Wu, Fanshi
Tiwari, Janak
Shi, Zhan
Feng, Tianli
Pantelides, Sokrates T.
Xu, Biao
Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance
title Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance
title_full Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance
title_fullStr Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance
title_full_unstemmed Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance
title_short Phase-engineered high-entropy metastable FCC Cu(2−y)Ag(y)(In(x)Sn(1−x))Se(2)S nanomaterials with high thermoelectric performance
title_sort phase-engineered high-entropy metastable fcc cu(2−y)ag(y)(in(x)sn(1−x))se(2)s nanomaterials with high thermoelectric performance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473540/
https://www.ncbi.nlm.nih.gov/pubmed/36277634
http://dx.doi.org/10.1039/d2sc02915d
work_keys_str_mv AT zhangwanjia phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT louyue phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT donghongliang phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT wufanshi phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT tiwarijanak phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT shizhan phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT fengtianli phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT pantelidessokratest phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance
AT xubiao phaseengineeredhighentropymetastablefcccu2yagyinxsn1xse2snanomaterialswithhighthermoelectricperformance