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首页> 外文期刊>Electrochimica Acta >Ultrafine SnO 2 nanoparticles encapsulated in ordered mesoporous carbon framework for Li-ion battery anodes
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Ultrafine SnO 2 nanoparticles encapsulated in ordered mesoporous carbon framework for Li-ion battery anodes

机译:超细SnO 2 纳米粒子封装在锂离子电池阳极有序的介孔碳框架中

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摘要

Ultrafine SnO2particles are encapsulated in the hollow nanochannels of ordered mesoporous carbon (OMC) framework by simple infiltration of tin precursor and heat treatment. The SnO2@OMC anode delivers excellent cyclic stability with a reversible specific capacity of ~1000?mAh g?1after 100 cycles at 100?mA?g?1for Li-ion batteries (LIBs). It also presents an excellent rate performance with a specific capacity of 680?mA?g?1at a high current density of 500?mA?g?1. Several functional features and ameliorating geometries play positive roles in Li-storage performance and stability of the electrode. They include (i) the intimate electrical contacts between the SnO2nanoparticles and the walls of OMC channels to facilitate fast ion/electron transfer, (ii) the large surface area originating from the unique architecture of the composite, and (iii) the encapsulation of SnO2particles within the channels to suppress their volume expansion during charge/discharge cycles. The reversibility of the conversion reaction is also supported by the high Li-ion diffusion coefficient with enhanced electrochemical reaction kinetics. Based on the above findings, this work may offer new insights into the rational nanostructural design of electrode materials for high performance rechargeable batteries.
机译:超细SnO2particles通过锡前体和热处理的简单浸润封装在有序中孔碳(OMC)框架的中空纳米通道。所述的SnO 2 @ OMC阳极提供具有〜1000?毫安克?一个可逆比容量1after 100次循环,在100?毫安·G·1对于锂离子电池(LIBS)优异的循环稳定性。它也呈现与680?毫安·G·1AT的500?毫安·G·1高的电流密度的比容量优异的倍率性能。一些功能特性和几何形状的改良在锂存储性能和电极的稳定发挥积极作用。这些条件包括(i)所述SnO2nanoparticles和OMC通道的壁之间的紧密的电接触,以便利快速离子/电子转移,(ii)从所述复合材料的独特的结构的大的表面积始发,和(iii)所述SnO2particles的封装所述通道内,以抑制在充电/放电循环其体积膨胀。转化反应的可逆性也由具有增强的电化学反应动力学的高锂离子扩散系数的支持。基于上述研究结果,这项工作可能会提供新的见解电极材料的合理纳米结构设计的高性能可充电电池。

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