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Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction

Mg(2)Si(1−x)Sn(x)-based compounds have been recognized as promising thermoelectric materials owing to their high figure-of-merit ZTs, abundance of raw constituent elements and nontoxicity. However, further improvement in the thermoelectric performance in this type of material is still constrained by...

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Autores principales: Chen, Jin, Xue, Wenhua, Li, Shan, Zhang, Gengxin, Cai, Gemei, Zhao, Huaizhou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9060531/
https://www.ncbi.nlm.nih.gov/pubmed/35518083
http://dx.doi.org/10.1039/c8ra09936g
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author Chen, Jin
Xue, Wenhua
Li, Shan
Zhang, Gengxin
Cai, Gemei
Zhao, Huaizhou
author_facet Chen, Jin
Xue, Wenhua
Li, Shan
Zhang, Gengxin
Cai, Gemei
Zhao, Huaizhou
author_sort Chen, Jin
collection PubMed
description Mg(2)Si(1−x)Sn(x)-based compounds have been recognized as promising thermoelectric materials owing to their high figure-of-merit ZTs, abundance of raw constituent elements and nontoxicity. However, further improvement in the thermoelectric performance in this type of material is still constrained by the high thermal conductivity. In this work, we prepared a series of representative Mg(2)Si(0.4−x)Sn(0.6)Sb(x) (x = 0, 0.0075, 0.008, 0.009, 0.01, 0.011) samples via the alkaline earth metal reduction method through a combination of ball milling and spark plasma sintering (SPS) processes. The samples featured many dislocations at the grain boundaries and plenty of nanoscale-coherent Mg(2)Si–Mg(2)Sn spinodal phases; both of which can effectively scatter heat-carrying phonons and have nearly no impact on the carrier transport. Meanwhile, Sb-doping can efficiently optimize the carrier concentration and significantly suppress the bipolar effects. As a result, a maximal ZT of 1.42 at 723 K and engineering (ZT)eng of 0.7 are achieved at the optimal Sb-doping level of x = 0.01. This result indicates that the alkaline earth metal reduction method could be an effective route to engineer phonon transport and improve the thermoelectric performance in Mg(2)Si(1−x)Sn(x)-based materials.
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spelling pubmed-90605312022-05-04 Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction Chen, Jin Xue, Wenhua Li, Shan Zhang, Gengxin Cai, Gemei Zhao, Huaizhou RSC Adv Chemistry Mg(2)Si(1−x)Sn(x)-based compounds have been recognized as promising thermoelectric materials owing to their high figure-of-merit ZTs, abundance of raw constituent elements and nontoxicity. However, further improvement in the thermoelectric performance in this type of material is still constrained by the high thermal conductivity. In this work, we prepared a series of representative Mg(2)Si(0.4−x)Sn(0.6)Sb(x) (x = 0, 0.0075, 0.008, 0.009, 0.01, 0.011) samples via the alkaline earth metal reduction method through a combination of ball milling and spark plasma sintering (SPS) processes. The samples featured many dislocations at the grain boundaries and plenty of nanoscale-coherent Mg(2)Si–Mg(2)Sn spinodal phases; both of which can effectively scatter heat-carrying phonons and have nearly no impact on the carrier transport. Meanwhile, Sb-doping can efficiently optimize the carrier concentration and significantly suppress the bipolar effects. As a result, a maximal ZT of 1.42 at 723 K and engineering (ZT)eng of 0.7 are achieved at the optimal Sb-doping level of x = 0.01. This result indicates that the alkaline earth metal reduction method could be an effective route to engineer phonon transport and improve the thermoelectric performance in Mg(2)Si(1−x)Sn(x)-based materials. The Royal Society of Chemistry 2019-01-30 /pmc/articles/PMC9060531/ /pubmed/35518083 http://dx.doi.org/10.1039/c8ra09936g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Jin
Xue, Wenhua
Li, Shan
Zhang, Gengxin
Cai, Gemei
Zhao, Huaizhou
Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction
title Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction
title_full Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction
title_fullStr Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction
title_full_unstemmed Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction
title_short Enhanced thermoelectric properties in N-type Mg(2)Si(0.4−x)Sn(0.6)Sb(x) synthesized by alkaline earth metal reduction
title_sort enhanced thermoelectric properties in n-type mg(2)si(0.4−x)sn(0.6)sb(x) synthesized by alkaline earth metal reduction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9060531/
https://www.ncbi.nlm.nih.gov/pubmed/35518083
http://dx.doi.org/10.1039/c8ra09936g
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