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Stable high-capacity and high-rate silicon-based lithium battery anodes upon two-dimensional covalent encapsulation

机译:二维共价包封后稳定的高容量和高速硅基锂电池阳极

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Silicon is a promising anode material for lithium-ion and post lithium-ion batteries but suffers from a large volume change upon lithiation and delithiation. The resulting instabilities of bulk and interfacial structures severely hamper performance and obstruct practical use. Stability improvements have been achieved, although at the expense of rate capability. Herein, a protocol is developed which we describe as two-dimensional covalent encapsulation. Two-dimensional, covalently bound silicon-carbon hybrids serve as proof-of-concept of a new material design. Their high reversibility, capacity and rate capability furnish a remarkable level of integrated performances when referred to weight, volume and area. Different from existing strategies, the two-dimensional covalent binding creates a robust and efficient contact between the silicon and electrically conductive media, enabling stable and fast electron, as well as ion, transport from and to silicon. As evidenced by interfacial morphology and chemical composition, this design profoundly changes the interface between silicon and the electrolyte, securing the as-created contact to persist upon cycling. Combined with a simple, facile and scalable manufacturing process, this study opens a new avenue to stabilize silicon without sacrificing other device parameters. The results hold great promise for both further rational improvement and mass production of advanced energy storage materials.
机译:硅是锂离子和后锂离子电池的有前途的阳极材料,但在锂化和脱锂时遭受大的体积变化。由此产生的散装和界面结构的稳定性严重妨碍性能和阻碍实际使用。实现了稳定性改进,但耗费速率能力。在此,开发了一种协议,我们描述为二维共价封装。二维,共价结合的硅碳杂交机用作新材料设计的概念概念。当提到重量,体积和区域时,它们的高可逆性,容量和速率能力提供了卓越的综合性能。与现有策略不同,二维共价结合在硅和导电介质之间产生稳健和有效的接触,从而实现稳定且快速的电子,以及离子,从硅运输。如界面形态和化学成分所证明,这种设计深刻地改变了硅和电解质之间的界面,确保了在循环时坚持以持续存在的接触。结合简单,轻松和可扩展的制造过程,本研究开辟了一个新的途径,以稳定硅,而不会牺牲其他设备参数。结果对先进储能材料的进一步合理改善和大规模生产具有很大的承担。

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