Thermoelectric porous MOF based hybrid materials
Porous hybrid materials and MOF (Metal–Organic-Framework) films represent modern designer materials that exhibit many requirements of a near ideal and tunable future thermoelectric (TE) material. In contrast to traditional semiconducting bulk TE materials, porous hybrid MOF templates can be used to...
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2020-06-01
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Online Access: | http://dx.doi.org/10.1063/5.0004699 |
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doaj-f4db2c85bfa241f08a3d075114fa4ca32020-11-25T03:13:24ZengAIP Publishing LLCAPL Materials2166-532X2020-06-0186060902060902-1010.1063/5.0004699Thermoelectric porous MOF based hybrid materialsEngelbert Redel0Helmut Baumgart1Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Karlsruhe, GermanyDepartment of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia 23529, USAPorous hybrid materials and MOF (Metal–Organic-Framework) films represent modern designer materials that exhibit many requirements of a near ideal and tunable future thermoelectric (TE) material. In contrast to traditional semiconducting bulk TE materials, porous hybrid MOF templates can be used to overcome some of the constraints of physics in bulk TE materials. These porous hybrid systems are amenable for simulation and modeling to design novel optimized electron-crystal phonon-glass materials with potentially very high ZT (figure of merit) numbers. Porous MOF and hybrid materials possess an ultra-low thermal conductivity, which can be further modulated by phonon engineering within their complex porous and hierarchical architecture to advance the TE figure of merit (ZT). This Perspective review discusses recent results of MOF TE materials and provides a future outlook and the vision to the search for the next generation TE porous hybrid and MOF materials, which could be part of the green renewable energy revolution with novel materials of sustainably high ZT values.http://dx.doi.org/10.1063/5.0004699 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Engelbert Redel Helmut Baumgart |
spellingShingle |
Engelbert Redel Helmut Baumgart Thermoelectric porous MOF based hybrid materials APL Materials |
author_facet |
Engelbert Redel Helmut Baumgart |
author_sort |
Engelbert Redel |
title |
Thermoelectric porous MOF based hybrid materials |
title_short |
Thermoelectric porous MOF based hybrid materials |
title_full |
Thermoelectric porous MOF based hybrid materials |
title_fullStr |
Thermoelectric porous MOF based hybrid materials |
title_full_unstemmed |
Thermoelectric porous MOF based hybrid materials |
title_sort |
thermoelectric porous mof based hybrid materials |
publisher |
AIP Publishing LLC |
series |
APL Materials |
issn |
2166-532X |
publishDate |
2020-06-01 |
description |
Porous hybrid materials and MOF (Metal–Organic-Framework) films represent modern designer materials that exhibit many requirements of a near ideal and tunable future thermoelectric (TE) material. In contrast to traditional semiconducting bulk TE materials, porous hybrid MOF templates can be used to overcome some of the constraints of physics in bulk TE materials. These porous hybrid systems are amenable for simulation and modeling to design novel optimized electron-crystal phonon-glass materials with potentially very high ZT (figure of merit) numbers. Porous MOF and hybrid materials possess an ultra-low thermal conductivity, which can be further modulated by phonon engineering within their complex porous and hierarchical architecture to advance the TE figure of merit (ZT). This Perspective review discusses recent results of MOF TE materials and provides a future outlook and the vision to the search for the next generation TE porous hybrid and MOF materials, which could be part of the green renewable energy revolution with novel materials of sustainably high ZT values. |
url |
http://dx.doi.org/10.1063/5.0004699 |
work_keys_str_mv |
AT engelbertredel thermoelectricporousmofbasedhybridmaterials AT helmutbaumgart thermoelectricporousmofbasedhybridmaterials |
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