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Electrolyte-Driven Cu 4+ Substitution in MoSe 2 : Synergy of an Inorganic-Rich Solid Electrolyte Interphase and Thermal Activation for Sodium-Ion Batteries

作者:Jing Qin, Xiujuan Wang, Heyang Li, Fangxiang Wang, Ling Chen, Hongya Miao, Fangfang Xing, Shupei Yuan, Ziqi Ye, Xifei Li, Xiaoming He · 发表于:ACS Nano · 年份:2025 · DOI:10.1021/acsnano.5c07701 · 被引用次数:4 · 研究领域:Advancements in Battery Materials、Advanced Battery Materials and Technologies、Supercapacitor Materials and Fabrication

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 Cu 4+ ions during electrochemical cycling remains mechanistically unclear. To address this, herein, Cu-doped MoSe 2 @C ultrathin nanosheets were synthesized via the solvothermal process and carbonization strategies. A systematic investigation was conducted to elucidate the underlying driving forces for Cu 4+ substitution at Mo 4+ 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 Cu 4+ (classified as a soft acid) demonstrates significantly stronger coordination affinity with Se 2– anions (soft bases) compared to the native Mo 4+ 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 + /Cu 4+ 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 el...