Logo image
Enhancing the lithium-ion storage capability of Cu2ZnSnS4 anodes via a nitrogen-doped conductive support
期刊文章   同儕審查

Enhancing the lithium-ion storage capability of Cu2ZnSnS4 anodes via a nitrogen-doped conductive support

Zeru Syum, Tadesse Billo, Amr Sabbah, Aswin kumar Anbalagan, Shaham Quadir, Adane Gebresilassie Hailemariam, Palani Sabhapathy, Chih-Hao Lee, Heng-Liang Wu, Li-Chyong Chen, …
Chemical Engineering Journal, 卷.465, 142786
06/2023

摘要

Conductive support Ex-situ XAS In-situ Raman Lithium-ion battery polyaniline (PANI) modify CZTS Chemistry (all) Environmental Chemistry Chemical Engineering (all) Industrial and Manufacturing Engineering
Achieving lithium-ion batteries with both excellent electrochemical performance and cycling stability is a top priority for their real-world applications. This work reports high-performance and stable Cu 2 ZnSnS 4 (CZTS) anode materials encapsulated by nitrogen-doped carbon (CZTS@N-C) for advanced lithium-ion battery application. Ex-situ X-ray photoelectron spectroscopy and transmission electron microscopy revealed that the nitrogen-doped carbon network features a more conducive solid-electrolyte interphase that enables lower charge-transfer resistance and fast Li + diffusion kinetics with negligible initial irreversible capacity loss. As a result, the CZTS@N-C electrode delivers a significantly enhanced capacity of 710 mAh g −1 with 73% capacity retention after 220 cycles at a current rate of 0.5 mA g −1 and superior rate performance compared to that of unmodified CZTS. Additionally, the study sheds light on the fast lithiation dynamics chemistry of CZTS@N-C through kinetics analysis, explored by in-situ Raman, ex-situ X-ray absorption, and in-situ electrochemical impedance. This study provides a new approach for fabricating high-performance, durable conductive polymer-encapsulated low-cost transition-metal-sulfide anode materials.

相關連結

指標

1 檢視次數

詳細資料

Logo image