4.8 Article

Facet-Dependent Thermal Instability in LiCoO2

Journal

NANO LETTERS
Volume 17, Issue 4, Pages 2165-2171

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.6b04502

Keywords

Lithium-ion batteries; in situ STEM/EELS; LiCoO2 degradation; thermal stability; oxygen release; ab initio molecular dynamics

Funding

  1. National Science Foundation [CMMI-1619743]
  2. MRI-R2 grant from the National Science Foundation [DMR-0959470]
  3. Qatar National Research Fund (QNRF) through the National Priorities Research Program [NPRP 7-162-2-077]

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Thermal runaways triggered by the oxygen release from oxide cathode materials pose a major safety concern for widespread application of lithium ion batteries. Utilizing in situ aberration-corrected scanning transmission electron microscopy (STEM) and electron energy loss spectroscopy (EELS) at high temperatures, we show that oxygen release from LixCoO2 cathode crystals is occurring at the surface of particles. We correlated this local oxygen evolution from the LixCoO2 structure with local phase transitions spanning from layered to spinel and then to rock salt structure upon exposure to elevated temperatures. Ab initio molecular dynamics simulations (AIMD) results show that oxygen release is highly dependent on LixCoO2 facet orientation. While the [001] facets are stable at 300 degrees C, oxygen release is observed from the [012] and [104] facets, where under-coordinated oxygen atoms from the delithiated structures can combine and eventually evolve as O-2. The novel understanding that emerges from the present study piovides in-depth insights into the thermal runaway mechanism of Li-ion batteries and can assist the design and fabrication of cathode crystals with the most thermally stable facets.

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