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Enhanced Li‐O 2 Battery Performance in a Binary “Liquid Teflon” and Dual Redox Mediators
Author(s) -
Balaish Moran,
Gao Xiangwen,
Bruce Peter G.,
EinEli Yair
Publication year - 2019
Publication title -
advanced materials technologies
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.184
H-Index - 42
ISSN - 2365-709X
DOI - 10.1002/admt.201800645
Subject(s) - overpotential , cathode , battery (electricity) , redox , electrochemistry , materials science , chemical engineering , decomposition , dual (grammatical number) , nanotechnology , analytical chemistry (journal) , chemistry , electrode , thermodynamics , organic chemistry , metallurgy , art , power (physics) , physics , literature , engineering
Low capacity, poor rechargeability, and premature cell death are major setbacks in the operation of Li‐O 2 battery, hindering its practical application. A promising approach of meeting those challenges is via the use of redox mediators (RMs), promoting Li 2 O 2 solution phase formation upon cell discharge and an efficient oxidation on charging. The use of dual RMs decouples the electrochemical reactions at the cathode with formation/decomposition of Li 2 O 2 , resulting in improved discharge capacity, lower charge overpotential, and cycle stability. Although Li‐O 2 cell performance is no longer mitigated by an insulating Li 2 O 2 , a major inherent barrier to implement viable and functioning Li‐air batteries lies in both limited O 2 mass transport and pores clogging. Here, a record discharge capacity of 6 mAh cm −2 (60% increase), by combining dual RMs with “liquid Teflon” type perfluorocarbons binary system, is demonstrated. The combination of the two materials in the cell contributes to the enhanced cell performance manifested also in lower charge overpotential values throughout dozens of cycles. This is also attributed to the unique compact and an exceptionally smooth morphology of the Li 2 O 2 deposit layers at both ends of the air cathode.

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