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电化学合成聚吡咯-钴-氧配位复合物作为高性能锂离子存储材料。

Electrochemically fabricated polypyrrole-cobalt-oxygen coordination complex as high-performance lithium-storage materials.

机构信息

Laboratory for Solid State Ionics, Institute of Physics, Chinese Academy of Sciences, 8 Nansanjie Str., Zhongguancun, Beijing 100190, P. R. China.

出版信息

Chemistry. 2011 Dec 23;17(52):14878-84. doi: 10.1002/chem.201002379. Epub 2011 Nov 30.

Abstract

Current lithium-ion battery (LIB) technologies are all based on inorganic electrode materials, though organic materials have been used as electrodes for years. Disadvantages such as limited thermal stability and low specific capacity hinder their applications. On the other hand, the transition metal oxides that provide high lithium-storage capacity by way of electrochemical conversion reaction suffer from poor cycling stability. Here we report a novel high-performance, organic, lithium-storage material, a polypyrrole-cobalt-oxygen (PPy-Co-O) coordination complex, with high lithium-storage capacity and excellent cycling stability. Extended X-ray absorption fine structure and Raman spectroscopy and other physical and electrochemical characterizations demonstrate that this coordination complex can be electrochemically fabricated by cycling PPy-coated Co(3)O(4) between 0.0 V and 3.0 V versus Li(+)/Li. Density functional theory (DFT) calculations indicate that each cobalt atom coordinates with two nitrogen atoms within the PPy-Co coordination layer and the layers are connected with oxygen atoms between them. Coordination weakens the C-H bonds on PPy and makes the complex a novel lithium-storage material with high capacity and high cycling stability.

摘要

目前的锂离子电池(LIB)技术均基于无机电极材料,尽管有机材料多年来一直被用作电极。其热稳定性有限和比容量低等缺点限制了它们的应用。另一方面,通过电化学转化反应提供高储锂容量的过渡金属氧化物则存在循环稳定性差的问题。在这里,我们报告了一种新型的高性能有机锂存储材料,即聚吡咯-钴-氧(PPy-Co-O)配位配合物,具有高储锂容量和优异的循环稳定性。扩展 X 射线吸收精细结构和拉曼光谱以及其他物理和电化学特性表明,这种配位配合物可以通过在 0.0 V 和 3.0 V 之间循环涂覆有 PPy 的 Co(3)O(4)来电化学制备。密度泛函理论(DFT)计算表明,每个钴原子在 PPy-Co 配位层内与两个氮原子配位,层之间通过氧原子连接。配位削弱了 PPy 上的 C-H 键,使该配合物成为一种具有高容量和高循环稳定性的新型锂存储材料。

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