Reaction mechanism studies towards effective fabrication of lithium-rich anti-perovskites Li3OX (X = Cl, Br)

Shuai Li, Jinlong Zhu, Yonggang Wang, John W. Howard, Xujie Lü, Yutao Li, Ravhi S. Kumar, Liping Wang, Luke L. Daemen, Yusheng Zhao

Research output: Contribution to journalArticlepeer-review

96 Scopus citations

Abstract

Lithium-rich anti-perovskites (LiRAPs), with general formula Li3OX (X = Cl, Br), recently reported as superionic conductors with 3-dimensional Li+ migrating channels, are emerging as promising candidates for solid electrolytes in all-solid-state lithium-ion batteries (LIBs). However, great challenges remain in the fabrication of pure LiRAPs due to difficulties such as low yield, impurity phases, thermodynamic instabilities, and moisture-sensitivity. In this work, we thoroughly studied the formation mechanism of Li3OCl and Li3OBr using various solid-state reaction routes. Different experimental strategies were developed to improve the syntheses, namely, for the purposes of phase stability, phase purity, and large-scale production. One feasible method is to use the strong reducing agents Li metal or LiH to eliminate the OH species. The results show that LiH is more effective than Li metal, mainly due to negatively charged H- and reaction uniformity. The other successful method employs a solid diffusion approach using Li2O and LiX as the starting reagents, thereby avoiding OH entirely; ball milling of reagents under Ar atmosphere was utilized to decrease initial grain size and increase the reaction rate. Fourier transform infrared spectroscopy (FTIR), thermal analyses, and first-principles calculations were performed to give indications on the reaction pathway.

Original languageEnglish
Pages (from-to)14-19
Number of pages6
JournalSolid State Ionics
Volume284
DOIs
StatePublished - Jan 1 2016
Externally publishedYes

Funding

The authors are grateful for the financial support by the ARPA-E project ( 0670-3052 ). We also thank Prof. Zheshuai Lin (TIPC, CAS) for his help in first-principle calculations.

FundersFunder number
ARPA-E project0670-3052

    Keywords

    • Lithium-ion battery
    • Lithium-rich anti-perovskite
    • Solid electrolyte
    • Solid-state reaction

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