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Mechanics-based optimization of yolk-shell carbon-coated silicon nanoparticle as electrode materials for high-capacity lithium ion battery

机译:基于力学的卵黄壳碳包覆硅纳米粒子作为大容量锂离子电池电极材料的优化

摘要

Yolk-shell carbon-coated silicon nanoparticles (Si@void@C NPs) have been demonstrated to have a great promise in solving the problem of significant volume change of silicon-based anode materials during lithiation and delithiation cycling. However, our in situ lithiation experiments show that Si@void@C NPs may still subject to fracture upon lithiation, depending on their characteristic structural features such as the size of Si yolk, the thickness of carbon shell, and the interspace between the yolk and shell. Given the size of Si yolk, to ensure structural integrity of Si@void@C NPs during lithiation and delithiation, thicker carbon shell and larger yolk-shell interspace are preferred. On the other hand, from the perspective of attaining higher effective capacity, thinner carbon shell and smaller yolk-shell interspace are favored. To find the optimal structural design which yields the maximum capacity and meanwhile ensure the integrity of Si@void@C NPs during lithiation, mechanics-based theoretical modeling is carried out. A diagram for structural optimizations is obtained, by which the optimized Si@void@C NPs are synthesized and found to have improved capacity and capacity retention compared to the unoptimized ones. The results of this paper provide a guideline for the design of Si@void@C NPs as anode materials for high-capacity lithium ion battery.
机译:卵黄壳碳包覆的硅纳米颗粒(Si @ void @ C NPs)已被证明在解决锂化和脱锂循环期间硅基负极材料的体积发生重大变化方面具有广阔的前景。然而,我们的原位锂化实验表明,Si @ void @ C NPs仍可能在锂化时发生断裂,这取决于它们的特征结构特征,例如Si卵黄的大小,碳壳的厚度以及卵黄与C的间隙。贝壳。给定Si卵黄的大小,为确保在锂化和脱锂过程中Si @ void @ C NP的结构完整性,首选较厚的碳壳和较大的卵黄壳间隙。另一方面,从获得更高的有效容量的观点出发,更薄的碳壳和更小的蛋黄-壳间隙是有利的。为了找到产生最大容量并同时确保Si @ void @ C NP在锂化过程中的完整性的最佳结构设计,进行了基于力学的理论建模。获得用于结构优化的图,通过该图可以合成优化的Si @ void @ C NP,并发现与未优化的NP相比,其容量和容量保持性有所提高。本文的结果为Si @ void @ C NPs作为高容量锂离子电池负极材料的设计提供了指导。

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