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Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals

[Image: see text] Direct energy conversion of heat into electricity using thermoelectric materials is an attractive solution to help address global energy issues. Developing novel materials composed of earth-abundant and nontoxic elements will aid progress toward the goal of sustainable thermoelectr...

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Autores principales: Dwivedi, Pratibha, Miyata, Masanobu, Higashimine, Koichi, Takahashi, Mari, Ohta, Michihiro, Kubota, Korefumi, Takida, Hiroshi, Akatsuka, Takeo, Maenosono, Shinya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6787884/
https://www.ncbi.nlm.nih.gov/pubmed/31616818
http://dx.doi.org/10.1021/acsomega.9b01944
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author Dwivedi, Pratibha
Miyata, Masanobu
Higashimine, Koichi
Takahashi, Mari
Ohta, Michihiro
Kubota, Korefumi
Takida, Hiroshi
Akatsuka, Takeo
Maenosono, Shinya
author_facet Dwivedi, Pratibha
Miyata, Masanobu
Higashimine, Koichi
Takahashi, Mari
Ohta, Michihiro
Kubota, Korefumi
Takida, Hiroshi
Akatsuka, Takeo
Maenosono, Shinya
author_sort Dwivedi, Pratibha
collection PubMed
description [Image: see text] Direct energy conversion of heat into electricity using thermoelectric materials is an attractive solution to help address global energy issues. Developing novel materials composed of earth-abundant and nontoxic elements will aid progress toward the goal of sustainable thermoelectric materials. In this study, we chemically synthesized Cu–Zn–Sn–S nanocrystals and fabricated a Cu(3)ZnSnS(5–y) thermoelectric material using nanocrystals as building blocks. The figure-of-merit (ZT) value of the Cu(3)ZnSnS(5–y) material was found to be 0.39 at 658 K. We substituted Zn with Al in the Cu(3)ZnSnS(5–y) system to form Cu(3)Zn(1–x)Al(x)SnS(5–y) (x = 0.25, 0.5, 0.75, and 1) to lower the lattice thermal conductivity of the resulting materials. Complete substitution of Al for Zn substantially decreased the lattice thermal conductivity and dramatically increased the electrical conductivity of the material. However, the ZT value could not be significantly enhanced, which could be primarily attributed to the high carrier thermal conductivity. These results highlight the production of Cu(3)Zn(1–x)Al(x)SnS(5–y) thermoelectric materials and unveil the scope for improvement of ZT values by altering transport properties.
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spelling pubmed-67878842019-10-15 Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals Dwivedi, Pratibha Miyata, Masanobu Higashimine, Koichi Takahashi, Mari Ohta, Michihiro Kubota, Korefumi Takida, Hiroshi Akatsuka, Takeo Maenosono, Shinya ACS Omega [Image: see text] Direct energy conversion of heat into electricity using thermoelectric materials is an attractive solution to help address global energy issues. Developing novel materials composed of earth-abundant and nontoxic elements will aid progress toward the goal of sustainable thermoelectric materials. In this study, we chemically synthesized Cu–Zn–Sn–S nanocrystals and fabricated a Cu(3)ZnSnS(5–y) thermoelectric material using nanocrystals as building blocks. The figure-of-merit (ZT) value of the Cu(3)ZnSnS(5–y) material was found to be 0.39 at 658 K. We substituted Zn with Al in the Cu(3)ZnSnS(5–y) system to form Cu(3)Zn(1–x)Al(x)SnS(5–y) (x = 0.25, 0.5, 0.75, and 1) to lower the lattice thermal conductivity of the resulting materials. Complete substitution of Al for Zn substantially decreased the lattice thermal conductivity and dramatically increased the electrical conductivity of the material. However, the ZT value could not be significantly enhanced, which could be primarily attributed to the high carrier thermal conductivity. These results highlight the production of Cu(3)Zn(1–x)Al(x)SnS(5–y) thermoelectric materials and unveil the scope for improvement of ZT values by altering transport properties. American Chemical Society 2019-09-26 /pmc/articles/PMC6787884/ /pubmed/31616818 http://dx.doi.org/10.1021/acsomega.9b01944 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Dwivedi, Pratibha
Miyata, Masanobu
Higashimine, Koichi
Takahashi, Mari
Ohta, Michihiro
Kubota, Korefumi
Takida, Hiroshi
Akatsuka, Takeo
Maenosono, Shinya
Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals
title Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals
title_full Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals
title_fullStr Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals
title_full_unstemmed Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals
title_short Nanobulk Thermoelectric Materials Fabricated from Chemically Synthesized Cu(3)Zn(1–x)Al(x)SnS(5–y) Nanocrystals
title_sort nanobulk thermoelectric materials fabricated from chemically synthesized cu(3)zn(1–x)al(x)sns(5–y) nanocrystals
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6787884/
https://www.ncbi.nlm.nih.gov/pubmed/31616818
http://dx.doi.org/10.1021/acsomega.9b01944
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