On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials

Half-Heusler compounds have been in focus as potential materials for thermoelectric energy conversion in the mid-temperature range, e.g., as in automotive or industrial waste heat recovery, for more than ten years now. Because of their mechanical and thermal stability, these compounds are advantageo...

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Main Authors: Michael Schwall, Benjamin Balke
Format: Article
Language:English
Published: MDPI AG 2018-04-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/11/4/649
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spelling doaj-63984b2ad242488ca28c1a00217d0b3c2020-11-24T23:22:22ZengMDPI AGMaterials1996-19442018-04-0111464910.3390/ma11040649ma11040649On the Phase Separation in n-Type Thermoelectric Half-Heusler MaterialsMichael Schwall0Benjamin Balke1Institut für Anorganische und Analytische Chemie, Johannes Gutenberg-Universität, 55099 Mainz, GermanyInstitut für Anorganische und Analytische Chemie, Johannes Gutenberg-Universität, 55099 Mainz, GermanyHalf-Heusler compounds have been in focus as potential materials for thermoelectric energy conversion in the mid-temperature range, e.g., as in automotive or industrial waste heat recovery, for more than ten years now. Because of their mechanical and thermal stability, these compounds are advantageous for common thermoelectric materials such as Bi 2 Te 3 , SiGe, clathrates or filled skutterudites. A further advantage lies in the tunability of Heusler compounds, allowing one to avoid expensive and toxic elements. Half-Heusler compounds usually exhibit a high electrical conductivity σ , resulting in high power factors. The main drawback of half-Heusler compounds is their high lattice thermal conductivity. Here, we present a detailed study of the phase separation in an n-type Heusler materials system, showing that the Ti x Zr y Hf z NiSn system is not a solid solution. We also show that this phase separation is key to the thermoelectric high efficiency of n-type Heusler materials. These results strongly underline the importance of phase separation as a powerful tool for designing highly efficient materials for thermoelectric applications that fulfill the industrial demands of a thermoelectric converter.http://www.mdpi.com/1996-1944/11/4/649Heusler compoundsphase separationthermoelectrics
collection DOAJ
language English
format Article
sources DOAJ
author Michael Schwall
Benjamin Balke
spellingShingle Michael Schwall
Benjamin Balke
On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials
Materials
Heusler compounds
phase separation
thermoelectrics
author_facet Michael Schwall
Benjamin Balke
author_sort Michael Schwall
title On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials
title_short On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials
title_full On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials
title_fullStr On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials
title_full_unstemmed On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials
title_sort on the phase separation in n-type thermoelectric half-heusler materials
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2018-04-01
description Half-Heusler compounds have been in focus as potential materials for thermoelectric energy conversion in the mid-temperature range, e.g., as in automotive or industrial waste heat recovery, for more than ten years now. Because of their mechanical and thermal stability, these compounds are advantageous for common thermoelectric materials such as Bi 2 Te 3 , SiGe, clathrates or filled skutterudites. A further advantage lies in the tunability of Heusler compounds, allowing one to avoid expensive and toxic elements. Half-Heusler compounds usually exhibit a high electrical conductivity σ , resulting in high power factors. The main drawback of half-Heusler compounds is their high lattice thermal conductivity. Here, we present a detailed study of the phase separation in an n-type Heusler materials system, showing that the Ti x Zr y Hf z NiSn system is not a solid solution. We also show that this phase separation is key to the thermoelectric high efficiency of n-type Heusler materials. These results strongly underline the importance of phase separation as a powerful tool for designing highly efficient materials for thermoelectric applications that fulfill the industrial demands of a thermoelectric converter.
topic Heusler compounds
phase separation
thermoelectrics
url http://www.mdpi.com/1996-1944/11/4/649
work_keys_str_mv AT michaelschwall onthephaseseparationinntypethermoelectrichalfheuslermaterials
AT benjaminbalke onthephaseseparationinntypethermoelectrichalfheuslermaterials
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