Composition dependent electrochemical properties of earth-abundant ternary nitride anodes
M Brooks Tellekamp, Anna Osella, Karen N Heinselman, Adele C Tamboli,, Chunmei Ban

TL;DR
This study explores the electrochemical properties of earth-abundant Zn1-xSn1+xN2 thin films as potential high-capacity, stable anodes for lithium-ion batteries, highlighting composition-dependent performance and mechanical stability improvements.
Contribution
It introduces the first detailed analysis of composition-dependent electrochemical properties of Zn1-xSn1+xN2 ternary nitride anodes, demonstrating enhanced capacity and stability.
Findings
Average reversible capacity > 1050 mAh/g for all compositions
Zn-poor films achieve 1220 mAh/g reversible capacity
Mechanical stability improves cycling performance
Abstract
Growing energy storage demands on lithium-ion batteries necessitate exploration of new electrochemical materials as next-generation battery electrode materials. In this work, we investigate the previously unexplored electrochemical properties of earth-abundant and tunable Zn1-xSn1+xN2 (x = -0.4 to x = 0.4) thin films, which show high electrical conductivity and high gravimetric capacity for Li insertion. Enhanced cycling performance is achieved compared to previously published end-members Zn3N2 and Sn3N4, showing decreased irreversible loss and increased total capacity and cycle stability. The average reversible capacity observed is > 1050 mAh/g for all compositions and 1220 mAh/g for Zn-poor (x = 0.2) films. Extremely Zn-rich films (x = -0.4) show improved adhesion; however, Zn-rich films undergo a phase transformation on the first cycle. Zn-poor and stoichiometric films do not exhibit…
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