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A beaded-string silicon anode

机译:串珠状硅阳极

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摘要

Interfacial instability is a fundamental issue in heterostructures ranging from biomaterials to joint replacement and electronic packaging. This challenge is particularly intriguing for lithium ion battery anodes comprising silicon as the ion storage material, where ultrahigh capacity is accompanied by vast mechanical stress that threatens delamination of silicon from the current collectors at the other side of the interface. Here, we describe Si-beaded carbon nanotube (CNT) strings whose interface is controlled by chemical functionalization, producing separated amorphous Si beads threaded along mechanically robust and electrically conductive CNT. In situ transmission electron microscopy combined with atomic and continuum modeling reveal that the chemically tailored Si-C interface plays important roles in constraining the Si beads, such that they exhibit a symmetric "radial breathing" around the CNT string, remaining crack-free and electrically connected throughout lithiation-delithiation cycling. These findings provide fundamental insights in controlling nanostructured interfaces to effectively respond to demanding environments such as lithium batteries.
机译:从生物材料到关节置换和电子包装,界面不稳定性是异质结构中的一个基本问题。对于包含硅作为离子存储材料的锂离子电池阳极来说,这一挑战尤其引人入胜,其中超高容量伴随着巨大的机械应力,巨大的机械应力威胁着硅从界面另一侧的集电器上分层。在这里,我们描述了硅珠碳纳米管(CNT)串,其界面由化学官能化控制,产生沿机械坚固且导电的CNT穿线的分离的非晶Si珠。原位透射电子显微镜结合原子模型和连续谱模型显示,化学定制的Si-C界面在约束Si珠粒方面起着重要作用,从而使它们在CNT串周围呈现对称的“径向呼吸”,保持无裂纹和电绝缘在整个锂化-去锂化循环中保持连接。这些发现为控制纳米结构界面以有效响应苛刻的环境(例如锂电池)提供了基本见识。

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