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Reactivity-Driven Metal-Adaptive Interphases for Dendrite-Free, High-Rate Alkali Metal Anodes
Jialin Lin1, Zian Wang1, Chaoping Liang1
1National Engineering Research Center of Powder Metallurgy, Powder Metallurgy Research Institute, Central South University, Changsha, Hunan, 410083, P. R. China.
Abstract:
Alkali metal anodes (e.g., Li and Na) require a solid-electrolyte interphase (SEI) customized to their physicomechanical and electrochemical demands; however, conventional SEI designs relying on generic "one-size-fits-all" approaches fail to fully address the metal-specific requirements. Herein, a metal-adaptive SEI reconstruction strategy is proposed to leverage the reactivity-guided diisopropoxy-bisethylacetoacetatotitanate (DPBT) coatings on alkali metal anodes (TC-Li/TC-Na). The resulting interphases both share a hierarchical architecture with an ultrathin titanate layer and a TiO2-based inner matrix connected through compositionally graded segments (Ti-O-M, M = Li/Na/C), yet demonstrate metal-specific structural differentiation. The moderate reactivity of Li facilitates the dense packing of larger TiO2 nanoparticles, forming a low-porosity, high-modulus layer that mechanically suppresses dendrites. Conversely, the more rapid reaction of Na instantly produces abundant gas bubbles and fosters a highly porous network with interconnected ultrasmall TiO2 nanoparticles, integrating moderate modulus with elevated surface roughness that dynamically accommodates volumetric strain and enhances interfacial activity. Consequently, the NCM811||TC-Li pouch cell achieves high-capacity retention (89.3%, 200 cycles, 456.8 Wh kg-1) under 0.2 C/0.5 C and stable operation under high capacity and high energy density of 11.1 Ah and 550.2 Wh kg-1, while NFM||TC-Na pouch cell deliveries exceptional cycling stability at 0.3 C/1 C (79.7% retention over 200 cycles).
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