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In situ and operando atomic force microscopy of high-capacity nano-silicon based electrodes for lithium-ion batteries

机译:原位和operando原子力显微镜高容量纳米硅在身基础电极时锂离子电池

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Silicon is a promising next-generation anode material for high-energy-density lithium-ion batteries. While the alloying of nano- and micron size silicon with lithium is relatively well understood, the knowledge of mechanical degradation and structural rearrangements in practical silicon-based electrodes during operation is limited. Here, we demonstrate, for the first time, in situ and operando atomic force microscopy (AFM) of nano-silicon anodes containing polymer binder and carbon black additive. With the help of this technique, the surface topography is analyzed while electrochemical reactions are occurring. In particular, changes in particle size as well as electrode structure and height are visualized with high resolution. Furthermore, the formation and evolution of the solid-electrolyte interphase (SEI) can be followed and its thickness determined by phase imaging and nano-indentation, respectively. Major changes occur in the first lithiation cycle at potentials below 0.6 V with respect to Li/Li+ due to increased SEI formation - which is a dynamic process - and alloying reactions. Overall, these results provide insight into the function of silicon-based composite electrodes and further show that AFM is a powerful technique that can be applied to important battery materials, without restriction to thin film geometries.
机译:硅是一种很有前途的下一代阳极材料高能量密度锂离子电池。大小硅锂相对较好理解,机械的知识退化和结构重组实际的硅基电极在操作是有限的。第一次,原位和operando原子力显微镜(AFM)的纳米硅在身阳极时包含聚合物粘结剂和炭黑添加剂。表面形貌进行了分析电化学反应发生。粒径的变化以及电极结构和高度可视化高分辨率。和固体电解质界面的演化(SEI)及其厚度由相位成像和nano-indentation决定的,分别。lithiation周期势低于0.6 V对李/李+由于增加SEI的形成——这是一个动态的过程,合金反应。硅基复合的功能电极和进一步表明AFM是强大的技术,可以应用于重要的电池材料,没有限制薄膜几何图形。

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