Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating
NiSb nanoparticles by 0.034, 0.074 and 0.16 volume fractions were successfully coated on bulk polycrystalline Ni0.05Mo3Sb5.4Te1.6 thermoelectric (TE) particles through a solvothermal route without deteriorating the bulk Ni0.05Mo3Sb5.4Te1.6 material. The samples were consolidated through hot pressing...
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Online Access: | http://dx.doi.org/10.1063/1.5038675 |
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doaj-5867cd2ce65c468aa761d1a0f358f7bf2020-11-25T00:42:02ZengAIP Publishing LLCAIP Advances2158-32262018-12-01812125304125304-1210.1063/1.5038675004811ADVThermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoatingNagaraj Nandihalli0Robert Liang1Dimuthu Wijethunge2Norman Zhou3Holger Kleinke4Department of Chemistry, University of Waterloo, Waterloo, Ontario N2L 3G1, CanadaWaterloo Institute for Nanotechnology, University of Waterloo, Waterloo, Ontario N2L 3G1, CanadaCenter for Advanced Mechatronics Systems, University of Moratuwa, Sri LankaWaterloo Institute for Nanotechnology, University of Waterloo, Waterloo, Ontario N2L 3G1, CanadaDepartment of Chemistry, University of Waterloo, Waterloo, Ontario N2L 3G1, CanadaNiSb nanoparticles by 0.034, 0.074 and 0.16 volume fractions were successfully coated on bulk polycrystalline Ni0.05Mo3Sb5.4Te1.6 thermoelectric (TE) particles through a solvothermal route without deteriorating the bulk Ni0.05Mo3Sb5.4Te1.6 material. The samples were consolidated through hot pressing and their thermoelectric (TE) properties were characterized. At 400 K, 500 K, and 600 K, 0.074 NiSb sample exhibited 22%, 16% and 11.3% increases in the power factor (P.F.) compared to bulk material. The main contributing factor to this enhanced power factor is the elevated electrical conductivity. For the same sample, the reciprocal relationship between Seebeck coefficient and electrical conductivity is decoupled. Sample 0.16 NiSb exhibited the highest electrical conductivity among the three samples. The thermal conductivity of the 0.16 sample was less temperature sensitive compared to other samples. HRTEM and SEM tools were applied to comprehend microstructural features and their relationship to TE transport properties. Pore effect on the thermal and electrical conductivity was elucidated. This study shows that grain-boundary manipulation via this wet chemistry technique is indeed an economically viable method to fabricate and optimize the transport properties of bulk TE materials.http://dx.doi.org/10.1063/1.5038675 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nagaraj Nandihalli Robert Liang Dimuthu Wijethunge Norman Zhou Holger Kleinke |
spellingShingle |
Nagaraj Nandihalli Robert Liang Dimuthu Wijethunge Norman Zhou Holger Kleinke Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating AIP Advances |
author_facet |
Nagaraj Nandihalli Robert Liang Dimuthu Wijethunge Norman Zhou Holger Kleinke |
author_sort |
Nagaraj Nandihalli |
title |
Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating |
title_short |
Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating |
title_full |
Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating |
title_fullStr |
Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating |
title_full_unstemmed |
Thermoelectric properties of Ni0.05Mo3Sb5.4Te1.6 composites with NiSb nanocoating |
title_sort |
thermoelectric properties of ni0.05mo3sb5.4te1.6 composites with nisb nanocoating |
publisher |
AIP Publishing LLC |
series |
AIP Advances |
issn |
2158-3226 |
publishDate |
2018-12-01 |
description |
NiSb nanoparticles by 0.034, 0.074 and 0.16 volume fractions were successfully coated on bulk polycrystalline Ni0.05Mo3Sb5.4Te1.6 thermoelectric (TE) particles through a solvothermal route without deteriorating the bulk Ni0.05Mo3Sb5.4Te1.6 material. The samples were consolidated through hot pressing and their thermoelectric (TE) properties were characterized. At 400 K, 500 K, and 600 K, 0.074 NiSb sample exhibited 22%, 16% and 11.3% increases in the power factor (P.F.) compared to bulk material. The main contributing factor to this enhanced power factor is the elevated electrical conductivity. For the same sample, the reciprocal relationship between Seebeck coefficient and electrical conductivity is decoupled. Sample 0.16 NiSb exhibited the highest electrical conductivity among the three samples. The thermal conductivity of the 0.16 sample was less temperature sensitive compared to other samples. HRTEM and SEM tools were applied to comprehend microstructural features and their relationship to TE transport properties. Pore effect on the thermal and electrical conductivity was elucidated. This study shows that grain-boundary manipulation via this wet chemistry technique is indeed an economically viable method to fabricate and optimize the transport properties of bulk TE materials. |
url |
http://dx.doi.org/10.1063/1.5038675 |
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