电解质
相间
电化学
阳极
无机化学
材料科学
离子
硫系化合物
电池(电)
过渡金属
热的
化学工程
纳米技术
金属
储能
电化学能量转换
快离子导体
碳化
电子转移
电化学电池
电极
作者
Jing Qin,Xiujuan Wang,Heyang Li,Fangxiang Wang,Ling Chen,Hongya Miao,Fangfang Xing,Shihao Yuan,Ziqi Ye,Xifei Li,Xiaoming He
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-09-08
卷期号:19 (36): 32322-32334
被引量:2
标识
DOI:10.1021/acsnano.5c07701
摘要
Transition metal chalcogenides (TMCs) have garnered significant attention as high-capacity anode materials, yet the unconventional role of the Cu collector meditating atomic-level substitution of metal-site cations by Cu4+ ions during electrochemical cycling remains mechanistically unclear. To address this, herein, Cu-doped MoSe2@C ultrathin nanosheets were synthesized via the solvothermal process and carbonization strategies. A systematic investigation was conducted to elucidate the underlying driving forces for Cu4+ substitution at Mo4+ sites and the crucial regulatory effects of solid electrolyte interphase (SEI) formation. The substitution mechanism was elucidated through the Hard and Soft Acid-Base principle, where Cu4+ (classified as a soft acid) demonstrates significantly stronger coordination affinity with Se2- anions (soft bases) compared to the native Mo4+ cations (hard acids). This electrochemical transition is mediated by ether-based electrolytes coupled with the Cu collector, where the in situ formation of a thin, inorganic-rich SEI layer establishes synergistic ion-transport highways for accelerated Na+/Cu4+ co-diffusion. Temperature-dependent studies reveal Arrhenius-type kinetics: charge transfer is kinetically hindered at ≤ 0 °C but thermally activated at 50-70 °C, confirming that interfacial charge transfer requires thermal energy to overcome activation barriers. This work provides a fundamental guideline for designing stable metal chalcogenide electrodes through interface engineering and electrolyte optimization.
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