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Title: A New Nonaqueous Flow Battery with Extended Cycling
Nonaqueous flow batteries hold promise given their high cell voltage and energy density, but their performance is often plagued by the crossover of redox compounds. In this study, we used permselective lithium superionic conducting (LiSICON) ceramic membranes to enable reliable long-term use of organic redox molecules in nonaqueous flow cells. With different solvents on each side, enhanced cell voltages were obtained for a flow battery using viologen-based negolyte and TEMPO-based posolyte molecules. The thermoplastic assembly of the LiSICON membrane realized leakless cell sealing, thus overcoming the mechanical brittleness challenge. As a result, stable cycling was achieved in the flow cells, which showed good capacity retention over an extended test time.  more » « less
Award ID(s):
2055222 2436843
PAR ID:
10611015
Author(s) / Creator(s):
; ; ; ; ; ; ;
Editor(s):
Murzin, Dmitry Yu
Publisher / Repository:
MDPI
Date Published:
Journal Name:
Reactions
Volume:
5
Issue:
3
ISSN:
2624-781X
Page Range / eLocation ID:
452 to 461
Subject(s) / Keyword(s):
nonaqueous flow battery organic permselectivity LiSICON stability
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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