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各种柠檬酸锌镍微球的简便制备及其向具有优异锂存储性能的ZnO-NiO混合微球的转变。

Facile fabrication of various zinc-nickel citrate microspheres and their transformation to ZnO-NiO hybrid microspheres with excellent lithium storage properties.

作者信息

Xie Qingshui, Ma Yating, Zeng Deqian, Wang Laisen, Yue Guanghui, Peng Dong-Liang

机构信息

Fujian Key Laboratory of Advanced Materials, Collaborative Innovation Center of Chemistry for Energy Materials, Department of Materials Science and Engineering, College of Materials, Xiamen University, Xiamen 361005, China.

出版信息

Sci Rep. 2015 Feb 16;5:8351. doi: 10.1038/srep08351.

Abstract

Zinc-nickel citrate microspheres are prepared by a simple aging process of zinc citrate solid microspheres in nickel nitrate solution. As the concentration of nickel nitrate solution increases, the morphology of the produced zinc-nickel citrate evolves from solid, yolk-shell to hollow microspheres. The formation mechanism of different zinc-nickel citrate microspheres is discussed. After annealing treatment of the corresponding zinc-nickel citrate microspheres in air, three different ZnO-NiO hybrid architectures including solid, yolk-shell and hollow microspheres can be successfully fabricated. When applied as the anode materials for lithium ion batteries, ZnO-NiO hybrid yolk-shell microspheres demonstrate the best electrochemical properties than solid and hollow counterparts. After 200th cycles, ZnO-NiO hybrid yolk-shell microspheres deliver a high reversible capacity of 1176 mA h g(-1). The unique yolk-shell configuration, the synergetic effect between ZnO and NiO and the catalytic effect of metal Ni generated by the reduction of NiO during discharging process are responsible for the excellent lithium storage properties of ZnO-NiO hybrid yolk-shell microspheres.

摘要

柠檬酸锌镍微球是通过柠檬酸锌固体微球在硝酸镍溶液中简单的老化过程制备而成。随着硝酸镍溶液浓度的增加,所制备的柠檬酸锌镍的形态从实心微球演变为蛋黄壳结构微球,再到空心微球。本文讨论了不同柠檬酸锌镍微球的形成机理。将相应的柠檬酸锌镍微球在空气中进行退火处理后,可以成功制备出包括实心、蛋黄壳和空心微球在内的三种不同的ZnO-NiO混合结构。当用作锂离子电池的负极材料时,ZnO-NiO混合蛋黄壳微球表现出比实心和空心对应物更好的电化学性能。在第200次循环后,ZnO-NiO混合蛋黄壳微球具有1176 mA h g(-1)的高可逆容量。独特的蛋黄壳结构、ZnO和NiO之间的协同效应以及放电过程中NiO还原产生的金属Ni的催化作用,是ZnO-NiO混合蛋黄壳微球具有优异储锂性能的原因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/95bb/4329550/b161cc0763b2/srep08351-f1.jpg

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