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Tuning the Outward to Inward Swelling in Lithiated Silicon Nanotubes via Surface Oxide Coating

机译:通过表面氧化物涂层调整锂化硅纳米管的向外膨胀至向内膨胀

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Electrochemically induced mechanical degradation hinders the application of Si anodes in advanced lithium-ion batteries. Hollow structures and surface coatings have been often used to mitigate the degradation, of Si-based anodes. However, the structural change and degradation mechanism during lithiation/delithiation of hollow Si structures with coatings remain unclear. Here, we combine in situ TEM experiment and chemomechanical modeling tri-study the electrochemically induced swelling of amorphous-Si (a-Si) nanotubes with different thicknesses of surface SiOx layers. Surprisingly; we find that no inward expansion occurs at the inner surface during lithiation of a-Si nanotubes with native oxides. In contrast, inward expansion can be induced by increasing the thickness of SiOx on the outer surface, thus reducing the overall outward swelling of the lithiated nanotube. Moreover, both the sandwich lithiation mechanism and the two-stage lithiation process in a Si nanotubes remain unchanged with the-increasing thickness of surface coatings. Our chemomechanical Modeling reveals, the mechanical confinement effects in lithiated a-Si nanotubes with and without SiOx coatings: This work-not only provides insights into the degradation of nanotube anodes with surface coatings but also sheds light onto the optimal design of hollow anodes for high-performance lithium-ion batteries.
机译:电化学诱导的机械降解阻碍了硅阳极在高级锂离子电池中的应用。空心结构和表面涂层通常被用来减轻硅基阳极的降解。然而,在具有涂层的中空硅结构的锂化/脱锂期间的结构变化和降解机理仍然不清楚。在这里,我们结合原位TEM实验和化学力学建模三项研究了具有不同厚度的SiOx表面的非晶硅(a-Si)纳米管的电化学诱导溶胀。出奇;我们发现,在用天然氧化物对a-Si纳米管进行锂化过程中,内表面没有发生向内膨胀。相反,可通过增加外表面上的SiOx厚度来诱导向内膨胀,从而减少锂化纳米管的整体向外膨胀。而且,随着表面涂层厚度的增加,Si纳米管中的夹层锂化机理和两阶段锂化过程均保持不变。我们的化学机械模型揭示了在有和没有SiOx涂层的锂化a-Si纳米管中的机械限制作用:这项工作不仅提供了对具有表面涂层的纳米管阳极降解的见解,而且还为中空阳极的最佳设计提供了启示。性能的锂离子电池。

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