Chemically welded dual-conductive micron-sized SiOx anodes enabled by a crosslinked binder for high-efficiency lean-electrolyte lithium storage

法拉第效率 阳极 材料科学 电解质 复合数 化学工程 锂(药物) 电极 导电体 复合材料 三聚氰胺树脂 钛酸锂 三聚氰胺 储能 离子键合 碳纤维 纳米技术 多孔性 离子强度
作者
Bo Yan,Meihua Zhong,Xiaojing Liu,Beijia Zheng,Wei Xiao,Yuyuan Cao,Daping Qiu,Lulu Zhang,Xuelin Yang,W. C. Li,Xifei Li
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:536: 175961-175961
标识
DOI:10.1016/j.cej.2026.175961
摘要

Micron-sized SiO x is a promising high-capacity anode for lithium-ion batteries, but its practical implementation remains limited by low initial Coulombic efficiency, sluggish kinetics, and rapid structural degradation. Here, we propose a synergistic modification strategy that integrates an interfacially bonded dual-conductive SiO x composite with a robust polymeric binder. High-energy co-milling of SiO x with electronic carbon and the ionic conductor Li 1.3 Al 0.3 Ti 1.7 (PO 4 ) 3 induces the formation of Si–C, Ti–C, and Si–O–Ti bonds, which interconnect the active and conductive phases into a continuous three-dimensional transport network while reducing direct exposure of SiO x to the electrolyte. To further stabilize the electrode architecture, this composite is coupled with a highly crosslinked sodium alginate–trimethylol melamine binder that exhibits superior thermal stability, electrolyte affinity, and mechanical strength compared to conventional binders. This binder plays a critical role in stabilizing mass-transport pathways by suppressing volume variations and promoting formation of a stable, LiF-rich solid electrolyte interphase. Benefiting from this dual-engineering design, the SiO x /C/LATP anode achieves an initial Coulombic efficiency of 76.2% at 0.1 A g −1 , a high capacity of nearly 901 mAh g −1 at 4.0 A g −1 , and exceptional capacity retention of 93.4% after 200 cycles at 1.0 A g −1 under lean electrolyte conditions, outperforming most reported SiO x -based systems. Full cells paired with NCM811 further exhibit impressive rate capability, prolonged cyclability, and high energy density, demonstrating the practical promise of this scalable approach. This work establishes a versatile design framework for enhancing the efficiency, kinetics, and durability of SiO x anodes, offering valuable guidance for both liquid- and solid-state battery applications.
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