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  4. The thermoelectrochemistry of lithium-glyme solvate ionic liquids: Towards waste heat harvesting
 
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The thermoelectrochemistry of lithium-glyme solvate ionic liquids: Towards waste heat harvesting

Journal
Physical Chemistry Chemical Physics
Journal Volume
18
Journal Issue
30
Start Page
20768
End Page
20777
ISSN
14639076
Date Issued
2016
Author(s)
Black, Jeffrey J.
Murphy, Thomas
Atkin, Rob
Dolan, Andrew
LEIGH ALDOUS  
DOI
10.1039/c6cp02255c
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-84979929923&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/721041
Abstract
Thermoelectrochemistry offers a simple, scalable technique for direct conversion of waste heat into useful electricity. Here the thermoelectrochemical properties of lithium-glyme solvate ionic liquids, as well as their dilute electrolyte analogues, have been investigated using mixtures of tetraglyme (G4, tetraethylene glycol dimethyl ether) and lithium bis(trifluoromethylsulfonyl)imide (Li[NTf2]). The thermoelectrochemical process is entropically-driven by release of the glyme from the lithium-glyme complex cation, due to electrodeposition of lithium metal at the hotter lithium electrode with concomitant electrodissolution at the cooler lithium electrode. The optimum ratio for thermochemical electricity generation is not the solvate ionic liquid (equimolar mixture of Li[NTf2] and glyme), but rather one Li[NTf2] to four G4, due to the mixtures relatively high ionic conductivity and good apparent Seebeck coefficient (+1.4 mV K-1). Determination of the lithium-glyme mixture thermal conductivity enabled full assessment of the Figure of Merit (ZT), and the efficiency relative to the Carnot efficiency to be determined. As the lithium electrodeposits are porous, alternating the temperature gradient results in a system that actually improves with repeated use. © 2016 the Owner Societies.
Publisher
Royal Society of Chemistry
Type
journal article

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