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由镍纳米金字塔阵列支撑的非晶态锗的简便合成作为钠离子电池的阳极材料

Facile Synthesis of Amorphous Ge Supported by Ni Nanopyramid Arrays as an Anode Material for Sodium-Ion Batteries.

作者信息

Wu Hao, Liu Wenjun, Zheng Lihua, Zhu Danfeng, Du Ning, Xiao Chengmao, Su Liwei, Wang Lianbang

机构信息

State Key Laboratory Breeding Base of Green Chemistry-Synthesis Technology College of Chemical Engineering Zhejiang University of Technology Hangzhou 310014 P. R. China.

State Key Lab of Silicon Materials School of Materials Science and Engineering Zhejiang University Hangzhou 310027 P. R. China.

出版信息

ChemistryOpen. 2019 Mar 5;8(3):298-303. doi: 10.1002/open.201900024. eCollection 2019 Mar.

Abstract

In this work, we introduce Ni nanopyramid arrays (NPAs) supported amorphous Ge anode architecture and demonstrate its effective improvement in sodium storage properties. The Ni-Ge NPAs are prepared by facile electrodeposition and sputtering method, which eliminates the need for any binder or conductive additive when used as a Na-ion battery anode. The electrodes display stable cycling performance and enhanced rate capabilities in contrast with planar Ge electrodes, which can be owing to the rational design of the architectured electrodes and firm bonding between current collector and active material (i. e. Ni and Ge, respectively). To validate improvement of nanostructures on electrochemical performance, sodium insertion behavior of crystalline Ge derived from MgGe precursor has been investigated, in which limited but effective enhancement of sodium storage properties are realized by introducing porous nanostructure in crystalline Ge. These results show that elaborately designed configuration of Ge electrodes may be a promising anode for Na-ion battery applications.

摘要

在本工作中,我们引入了镍纳米金字塔阵列(NPAs)支撑的非晶态锗阳极结构,并证明了其对储钠性能的有效改善。镍 - 锗NPAs通过简便的电沉积和溅射方法制备,用作钠离子电池阳极时无需任何粘结剂或导电添加剂。与平面锗电极相比,该电极展现出稳定的循环性能和增强的倍率性能,这可能归因于结构化电极的合理设计以及集流体与活性材料(即分别为镍和锗)之间的牢固结合。为了验证纳米结构对电化学性能的改善,对源自MgGe前驱体的结晶锗的钠嵌入行为进行了研究,其中通过在结晶锗中引入多孔纳米结构实现了储钠性能有限但有效的增强。这些结果表明,精心设计的锗电极结构可能是钠离子电池应用中一种有前景的阳极材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4ae/6401530/99936751cddd/OPEN-8-298-g001.jpg

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