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硅烯花:一种用于高性能锂电池负极的双稳定硅基构筑块。

Silicene Flowers: A Dual Stabilized Silicon Building Block for High-Performance Lithium Battery Anodes.

机构信息

CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology , Beijing 100190, PR China.

University of Chinese Academy of Sciences , Beijing 100049, PR China.

出版信息

ACS Nano. 2017 Jul 25;11(7):7476-7484. doi: 10.1021/acsnano.7b03942. Epub 2017 Jul 11.

Abstract

Nanostructuring is a transformative way to improve the structure stability of high capacity silicon for lithium batteries. Yet, the interface instability issue remains and even propagates in the existing nanostructured silicon building blocks. Here we demonstrate an intrinsically dual stabilized silicon building block, namely silicene flowers, to simultaneously address the structure and interface stability issues. These original Si building blocks as lithium battery anodes exhibit extraordinary combined performance including high gravimetric capacity (2000 mAh g at 800 mA g), high volumetric capacity (1799 mAh cm), remarkable rate capability (950 mAh g at 8 A g), and excellent cycling stability (1100 mA h g at 2000 mA g over 600 cycles). Paired with a conventional cathode, the fabricated full cells deliver extraordinarily high specific energy and energy density (543 Wh kg and 1257 Wh L, respectively) based on the cathode and anode, which are 152% and 239% of their commercial counterparts using graphite anodes. Coupled with a simple, cost-effective, scalable synthesis approach, this silicon building block offers a horizon for the development of high-performance batteries.

摘要

纳米结构化是一种提高高容量硅在锂电池中结构稳定性的变革性方法。然而,界面不稳定问题仍然存在,甚至在现有的纳米结构化硅构建块中传播。在这里,我们展示了一种内在双重稳定的硅构建块,即硅烯花,以同时解决结构和界面稳定性问题。这些原始的硅建筑块作为锂电池的阳极,表现出非凡的综合性能,包括高比容量(在 800 mA g 下为 2000 mAh g)、高比容量(在 1799 mAh cm)、显著的倍率性能(在 8 A g 下为 950 mAh g)和出色的循环稳定性(在 2000 mA g 下经过 600 次循环后为 1100 mA h g)。与传统阴极配对后,所制备的全电池基于阴极和阳极提供了极高的比能量和能量密度(分别为 543 Wh kg 和 1257 Wh L),分别是使用石墨阳极的商业电池的 152%和 239%。结合简单、经济高效、可扩展的合成方法,这种硅构建块为高性能电池的发展提供了一个前景。

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