DOI: 10.1021/acsenergylett.6c01885 ISSN: 2380-8195

Escaping the Polymerization-Kinetics Trap in Ether Electrolytes for Durable Silicon Interphases

Tianyang Hong, Di Liu, Xiaoqin Yi, Xianting Zhao, Yunlin Zhu, Yanhong Li, Wenwu Li, Zaiping Guo, Meilin Liu, Xianhui Zhang

Abstract

Polymer-rich interphases are widely considered beneficial for silicon (Si) anodes because their mechanical compliance can buffer repeated volume changes. Here, we show that stronger polymerization does not necessarily yield a more durable Si interface. Within a matched pair of cyclic-acetal electrolytes, trioxane exhibits a stronger intrinsic polymerization tendency than dioxolane, yet delivers inferior cycling stability, revealing a polymerization-kinetics trap in which burst-like early-stage polymerization prematurely depletes polymerizable species and drives heterogeneous interphase growth. The introduction of 0.2 M lithium nitrate (LiNO3) yields two complementary effects. NO3– coordination suppresses premature 1,3,5-trioxane (TO) activation, while preferential nitrate reduction enables interphase passivation. Together, these effects reduce sustained electrolyte consumption and promote the formation of a more coherent interphase. This kinetic regulation is supported by cycle-dependent 1H nuclear magnetic resonance (1H NMR) and impedance evolution and yields a thinner, more coherent electrode/electrolyte interface layer. As a result, Si/C anodes retain 81.1% capacity after 400 cycles at 0.5 C, with corresponding full cells retaining 85.4% after 100 cycles.