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Kinetics and electrochemical evolution of binary silicon-polymer systems for lithium ion batteries

机译:锂离子电池二元硅聚合物体系的动力学和电化学演化

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摘要

Silicon is a promising anode material for lithium-ion batteries owing to its high specific capacity and low discharge potential. To diminish Si structural degradation and its anode-capacity fading due to the vast volume change during alloying and dealloying, effective binders assisted in the encapsulation of Si anode materials and enhanced their integral stability. Herein, two conducting-hydrogel coatings, polyaniline (PANI) and polypyrrole (PPy), are formed to trap the Si surface via a facile and environmentally benign sol-gel polymerization process. Functional groups from polymer hydrogels chemically promote the confinement of conducting shells on the Si surface, rendering the Si-hydrogel frameworks without resistive binders and carbon black. The effects of coating thickness and conductivity of PPy and PANI coatings on the electrochemical properties of Si anodes have been investigated, and compared to insulating polyacrylic acid (PAA)-Si blended electrodes. The kinetics and the physical evolution of the binary Si-polymer systems during electrochemical reactions have been systematically studied via electrochemical impedance spectroscopy (EIS). It has been observed that the degree of improvement of the cycling stability and the rate capability of the three Si-polymer systems decrease in the order of PPy > PANI > PAA.
机译:硅因其高比容量和低放电电位而是一种很有前途的锂离子电池负极材料。为了减少合金化和脱合金过程中由于体积变化而导致的硅结构退化及其阳极容量衰减,有效的粘结剂有助于硅阳极材料的封装并增强其整体稳定性。本文中,形成了聚苯胺(PANI)和聚吡咯(PPy)两种导电水凝胶涂层,以通过简单且对环境无害的溶胶-凝胶聚合过程捕获Si表面。聚合物水凝胶的官能团在化学上促进了导电壳层在硅表面的约束,使硅水凝胶框架没有电阻粘合剂和炭黑。研究了PPy和PANI涂层的涂层厚度和电导率对硅阳极电化学性能的影响,并与绝缘聚丙烯酸(PAA)-硅共混电极进行了比较。通过电化学阻抗谱(EIS)系统地研究了二元硅聚合物体系在电化学反应过程中的动力学和物理演化。据观察,3种Si-聚合物体系的循环稳定性和倍率能力的提高程度依次为PPy>PANI>PAA。

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