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Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Stress-Dissipating Cocontinuous Carbon-Silicon Microparticles for High-Energy Lithium-Ion Batteries with Low
Yiteng Luo1, Dongsheng Yang1, Zidong Chen1
1Institute of New-Energy and Low-Carbon Technology (INELT), College of Carbon Neutrality Future Technology, Sichuan University, Chengdu, Sichuan, 610065, China.
Abstract:
Large lithiation-induced expansion impedes the application of silicon anodes in lithium-ion batteries (LIBs). Although porous particles alleviate expansion, increasing structural fragility and specific surface area (SSA) negate cell performance. Here, we report structurally robust, low-SSA (5.2 m2/g) microparticles with cocontinuous carbon-silicon architecture (C-CSi). This design features a 3D interpenetrating nanosilicon and porous carbon network, encapsulated within micrometer-sized particles. As opposed to conventional carbon-silicon microparticles with discrete Si distribution, the continuous structure disperses lithiation stress and facilitates intraparticle Li diffusion, enabling high initial Coulombic efficiency (88.4%), and large calendaring compatibility (>1.4 g/cm3). Particle-specific tracking, finite element simulations, and operando Raman spectroscopy reveal stress dissipation and electrolyte isolation. The C-CSi/graphite || NCM811 pouch cells (4 mAh/cm2) showed >80% capacity over 300 cycles with minimal expansion comparable to graphite, and the stacked pouch cells achieve 330 Wh/kg. This work presents a novel carbon-silicon architecture for high-energy LIBs with minimized expansion.
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