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Microclusters of Kinked Silicon Nanowires Synthesized by a Recyclable Iodide Process for High-Performance Lithium-Ion Battery Anodes

机译:用于高性能锂离子电池阳极的可再循环碘化物工艺合成的扭结硅纳米线的微生物蛋白

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摘要

Silicon shows great promise as a high-capacity anode material for lithium-ion batteries. Nanostructuring silicon minimizes the impact of fracturing during charging and discharging. However, synthesizing nanostructured silicon typically requires complicated procedures with high manufacturing costs. Additionally, these complicated procedures typically have poor secondary particle formation, a requirement to achieve a high tap density. Here, a cost-effective synthesis procedure which generates nearly ideal secondary particle clusters of nanostructured silicon is developed. The cost-effectiveness is a result of the in operando generation of silicon iodide from iodine gas and low-grade silicon microparticle. Decomposition of silicon iodide into crystalline silicon and iodine gas enables recycling of the iodine gas, allowing for near full reutilization of iodine in the following cycles. The optimal nanostructures and microstructures of silicon synthesized by the recyclable iodide decomposition reaction enables 83.6% capacity retention over 1000 cycles. The good performance is a result of well-maintained morphology during cycling, enabling reutilization of the solid electrolyte interphase.
机译:硅显示为锂离子电池的高容量阳极材料。纳米结构硅最小化压裂在充电和放电期间的影响。然而,合成纳米结构硅通常需要具有高制造成本的复杂程序。另外,这些复杂的程序通常具有差的二级颗粒形成,需要实现高振奋密度的要求。这里,开发了一种经济高效的合成程序,其产生纳米结构硅的几乎理想的二级粒子簇。成本效益是来自碘天然气和低级硅微粒的硅碘化物的Orcando产生的结果。硅碘化物分解成晶体硅和碘气体使得能够回收碘气体,从而允许在下列循环中接近碘的完全重用。通过可回收的碘化物分解反应合成的硅的最佳纳米结构和微观结构使得能量保持超过1000次循环的83.6%。良好的性能是在循环期间保持良好的形态的结果,使固体电解质相互相干的再利用。

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