Fracture of crystalline silicon nanopillars during electrochemical lithium insertion

材料科学 纳米柱 电化学 无定形固体 阳极 阴极 复合材料 电极 纳米技术 冶金 纳米结构 结晶学 化学 物理化学
作者
Seok Woo Lee,Matthew T. McDowell,Lucas A. Berla,William D. Nix,Yi Cui
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [Proceedings of the National Academy of Sciences]
卷期号:109 (11): 4080-4085 被引量:378
标识
DOI:10.1073/pnas.1201088109
摘要

From surface hardening of steels to doping of semiconductors, atom insertion in solids plays an important role in modifying chemical, physical, and electronic properties of materials for a variety of applications. High densities of atomic insertion in a solid can result in dramatic structural transformations and associated changes in mechanical behavior: This is particularly evident during electrochemical cycling of novel battery electrodes, such as alloying anodes, conversion oxides, and sulfur and oxygen cathodes. Silicon, which undergoes 400% volume expansion when alloying with lithium, is an extreme case and represents an excellent model system for study. Here, we show that fracture locations are highly anisotropic for lithiation of crystalline Si nanopillars and that fracture is strongly correlated with previously discovered anisotropic expansion. Contrary to earlier theoretical models based on diffusion-induced stresses where fracture is predicted to occur in the core of the pillars during lithiation, the observed cracks are present only in the amorphous lithiated shell. We also show that the critical fracture size is between about 240 and 360 nm and that it depends on the electrochemical reaction rate.
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