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Review on recent progress of nanostructured anode materials for Li-ion batteries

机译:锂离子电池纳米结构负极材料的最新研究进展

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摘要

This review highlights the recent research advances in active nanostructured anode materials for the next generation of Li-ion batteries (LIBs). In fact, in order to address both energy and power demands of secondary LIBs for future energy storage applications, it is required the development of innovative kinds of electrodes. Nanostructured materials based on carbon, metal/semiconductor, metal oxides and metal phosphides/nitrides/sulfides show a variety of admirable properties for LIBs applications such as high surface area, low diffusion distance, high electrical and ionic conductivity. Therefore, nanosized active materials are extremely promising for bridging the gap towards the realization of the next generation of LIBs with high reversible capacities, increased power capability, long cycling stability and free from safety concerns. In this review, anode materials are classified, depending on their electrochemical reaction with lithium, into three groups: intercalation/de-intercalation, alloy/de-alloy and conversion materials. Furthermore, the effect of nanoscale size and morphology on the electrochemical performance is presented. Synthesis of the nanostructures, lithium battery performance and electrode reaction mechanisms are also discussed. To conclude, the main aim of this review is to provide an organic outline of the wide range of recent research progresses and perspectives on nanosized active anode materials for future LIBs.
机译:这篇评论重点介绍了用于下一代锂离子电池(LIB)的活性纳米结构阳极材料的最新研究进展。实际上,为了满足未来储能应用中次级LIB的能量和功率需求,需要开发创新类型的电极。基于碳,金属/半导体,金属氧化物和金属磷化物/氮化物/硫化物的纳米结构材料对LIB应用显示出各种令人钦佩的特性,例如高表面积,低扩散距离,高电导率和离子电导率。因此,纳米活性材料对于弥合实现具有高可逆容量,增加的功率容量,长循环稳定性和无安全隐患的下一代LIB的实现来说是极有希望的。在这篇综述中,根据阳极材料与锂的电化学反应,将其分为三类:插层/脱层,合金/脱合金和转化材料。此外,提出了纳米级尺寸和形态对电化学性能的影响。还讨论了纳米结构的合成,锂电池性能和电极反应机理。总而言之,本综述的主要目的是就近期LIB的纳米活性阳极材料的广泛研究进展和前景提供有机概述。

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