Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials

The quality of a thermoelectric material is judged by the size of its temperature de- pendent thermoeletric-figure-of-merit (zT ). Superionic materials, particularly Zn<sub>4</sub>Sb<sub>3</sub> and Cu<sub>2</sub>Se, are of current interest for the high zT and low...

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Main Author: Brown, David Ross
Format: Others
Language:en
en
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Published: 2015
Online Access:https://thesis.library.caltech.edu/8631/66/Brown_DR_2015.pdf
https://thesis.library.caltech.edu/8631/60/FrontMatter_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/2/Chapter%201_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/19/Chapter%202_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/23/Chapter%203_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/22/Chapter%204_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/49/Chapter%205_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/11/Chapter%206_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/48/Chapter%207_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/20/Chapter%208_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/21/Bibiliography_DavidBrown2015.pdf
Brown, David Ross (2015) Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9B56GNM. https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693 <https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693>
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spelling ndltd-CALTECH-oai-thesis.library.caltech.edu-86312021-01-17T05:01:41Z https://thesis.library.caltech.edu/8631/ Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials Brown, David Ross The quality of a thermoelectric material is judged by the size of its temperature de- pendent thermoeletric-figure-of-merit (zT ). Superionic materials, particularly Zn<sub>4</sub>Sb<sub>3</sub> and Cu<sub>2</sub>Se, are of current interest for the high zT and low thermal conductivity of their disordered, superionic phase. In this work it is reported that the super-ionic materials Ag<sub>2</sub>Se, Cu<sub>2</sub>Se and Cu<sub>1.97</sub>Ag<sub>0.03</sub>Se show enhanced zT in their ordered, normal ion-conducting phases. The zT of Ag<sub>2</sub>Se is increased by 30% in its ordered phase as compared to its disordered phase, as measured just below and above its first order phase transition. The zT ’s of Cu<sub>2</sub>Se and Cu<sub>1.97</sub>Ag<sub>0.03</sub>Se both increase by more than 100% over a 30 K temperatures range just below their super-ionic phase transitions. The peak zT of Cu<sub>2</sub>Se is 0.7 at 406 K and of Cu<sub>1.97</sub>Ag<sub>0.03</sub>Se is 1.0 at 400 K. In all three materials these enhancements are due to anomalous increases in their Seebeck coefficients, beyond that predicted by carrier concentration measurements and band structure modeling. As the Seebeck coefficient is the entropy transported per carrier, this suggests that there is an additional quantity of entropy co-transported with charge carriers. Such co-transport has been previously observed via co-transport of vibrational entropy in bipolaron conductors and spin-state entropy in Na<sub>x</sub>Co<sub>2</sub>O<sub>4</sub>. The correlation of the temperature profile of the increases in each material with the nature of their phase transitions indicates that the entropy is associated with the thermodynamcis of ion-ordering. This suggests a new mechanism by which high thermoelectric performance may be understood and engineered. 2015 Thesis NonPeerReviewed application/pdf en other https://thesis.library.caltech.edu/8631/66/Brown_DR_2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/60/FrontMatter_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/2/Chapter%201_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/19/Chapter%202_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/23/Chapter%203_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/22/Chapter%204_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/49/Chapter%205_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/11/Chapter%206_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/48/Chapter%207_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/20/Chapter%208_DavidBrown2015.pdf application/pdf en other https://thesis.library.caltech.edu/8631/21/Bibiliography_DavidBrown2015.pdf Brown, David Ross (2015) Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9B56GNM. https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693 <https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693> https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693 CaltechTHESIS:08112014-121653693 10.7907/Z9B56GNM
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description The quality of a thermoelectric material is judged by the size of its temperature de- pendent thermoeletric-figure-of-merit (zT ). Superionic materials, particularly Zn<sub>4</sub>Sb<sub>3</sub> and Cu<sub>2</sub>Se, are of current interest for the high zT and low thermal conductivity of their disordered, superionic phase. In this work it is reported that the super-ionic materials Ag<sub>2</sub>Se, Cu<sub>2</sub>Se and Cu<sub>1.97</sub>Ag<sub>0.03</sub>Se show enhanced zT in their ordered, normal ion-conducting phases. The zT of Ag<sub>2</sub>Se is increased by 30% in its ordered phase as compared to its disordered phase, as measured just below and above its first order phase transition. The zT ’s of Cu<sub>2</sub>Se and Cu<sub>1.97</sub>Ag<sub>0.03</sub>Se both increase by more than 100% over a 30 K temperatures range just below their super-ionic phase transitions. The peak zT of Cu<sub>2</sub>Se is 0.7 at 406 K and of Cu<sub>1.97</sub>Ag<sub>0.03</sub>Se is 1.0 at 400 K. In all three materials these enhancements are due to anomalous increases in their Seebeck coefficients, beyond that predicted by carrier concentration measurements and band structure modeling. As the Seebeck coefficient is the entropy transported per carrier, this suggests that there is an additional quantity of entropy co-transported with charge carriers. Such co-transport has been previously observed via co-transport of vibrational entropy in bipolaron conductors and spin-state entropy in Na<sub>x</sub>Co<sub>2</sub>O<sub>4</sub>. The correlation of the temperature profile of the increases in each material with the nature of their phase transitions indicates that the entropy is associated with the thermodynamcis of ion-ordering. This suggests a new mechanism by which high thermoelectric performance may be understood and engineered.
author Brown, David Ross
spellingShingle Brown, David Ross
Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials
author_facet Brown, David Ross
author_sort Brown, David Ross
title Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials
title_short Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials
title_full Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials
title_fullStr Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials
title_full_unstemmed Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials
title_sort enhanced thermoelectric performance at the superionic phase transitions of mixed ion-electron conducting materials
publishDate 2015
url https://thesis.library.caltech.edu/8631/66/Brown_DR_2015.pdf
https://thesis.library.caltech.edu/8631/60/FrontMatter_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/2/Chapter%201_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/19/Chapter%202_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/23/Chapter%203_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/22/Chapter%204_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/49/Chapter%205_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/11/Chapter%206_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/48/Chapter%207_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/20/Chapter%208_DavidBrown2015.pdf
https://thesis.library.caltech.edu/8631/21/Bibiliography_DavidBrown2015.pdf
Brown, David Ross (2015) Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9B56GNM. https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693 <https://resolver.caltech.edu/CaltechTHESIS:08112014-121653693>
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