4.8 Article

Mechanisms of LiCoO2 Cathode Degradation by Reaction with HF and Protection by Thin Oxide Coatings

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 7, Issue 43, Pages 24265-24278

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b07887

Keywords

LiCoO2 cathode; capacity fading; cathode thin films; ald coatings; battery cycling

Funding

  1. National Science Foundation (NSF) [CHE-1214131]
  2. NSF [ACI-1053575, CNS-0821794]
  3. Univ. of Colorado Boulder

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Reactions of HF with uncoated and Al and Zn oxide-coated surfaces of LiCoO2 cathodes were studied using density functional theory. Cathode degradation caused by reaction of HF with the hydroxylated (10 (1) over bar4) LiCoO2 surface is dominated by formation of H2O and a LiF precipitate via a barrierless reaction that is exothermic by 1.53 eV. We present a detailed mechanism where HF reacts at the alumina coating to create a partially fluorinated alumina surface rather than forming AlF3 and H2O and thus alumina films reduce cathode degradation by scavenging HF and avoiding H2O formation. In contrast, we find that HF etches monolayer zinc oxide coatings, which thus fail to prevent capacity fading. However, thicker zinc oxide films mitigate capacity loss by reacting with HF to form a partially fluorinated zinc oxide surface. Metal oxide coatings that react with HF to form hydroxyl groups over H2O, like the alumina monolayer, will significantly reduce cathode degradation.

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