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构建具有增强的电化学性能的碳包覆镍磷纳米颗粒组装亚微米球,用于锂离子/钠离子电池。

Construction of carbon-coated nickel phosphide nanoparticle assembled submicrospheres with enhanced electrochemical properties for lithium/sodium-ion batteries.

机构信息

State Key Lab Incubation Base of Photoelectric Technology and Functional Materials, International Collaborative Center on Photoelectric Technology and Nano Functional Materials, Institute of Photonics & Photo-Technology, Northwest University, Xi'an 710069, PR China; Shaanxi Joint Lab of Graphene (NWU), Xi'an 710127, PR China.

Key Laboratory of Synthetic and Natural Functional Molecule Chemistry (Ministry of Education), College of Chemistry & Materials Science, Northwest University, Xi'an 710069, PR China; Shaanxi Joint Lab of Graphene (NWU), Xi'an 710127, PR China.

出版信息

J Colloid Interface Sci. 2019 Mar 7;538:187-198. doi: 10.1016/j.jcis.2018.11.093. Epub 2018 Nov 26.

Abstract

A hybrid based on nickel phosphide nanoparticle assembled submicrospheres coated with a glucose-derived carbon shell is synthesized from Ni-glycerate precursors through a carbon coating route and a subsequent calcination-phosphatization approach. Characterization results indicate that the synthesized submicrospheres have a diameter of ∼500 nm and are composed of nanoparticles as subunits with sizes ranging from 30 to 40 nm. Each sphere and its subunits are coated by a continuous carbon coating shell. The electrochemical performance of the material as an anode for reversible energy storage is investigated and evaluated. A comparative study of the lithium/sodium storage properties between the hybrid and pure nickel phosphide is carried out. The electrochemical results demonstrate that the hybrid fabricated electrode is a highly attractive anode for lithium- and sodium-ion batteries, exhibiting much better lithium/sodium storage properties compared to the nickel phosphide submicrospheres of the same construction. The reasons for the enhanced energy storage performance of the submicrospheres are explored by a series of comparison experiments based on morphology, structure, electrical conductivity, and kinetic property.

摘要

一种基于镍磷纳米颗粒组装的亚微米球,表面包覆葡萄糖衍生的碳壳,是由 Ni-甘油酸前体通过碳包覆路线和随后的煅烧-磷化方法合成的。表征结果表明,所合成的亚微米球的直径约为 500nm,由尺寸在 30 至 40nm 之间的纳米颗粒作为亚单位组成。每个球体及其亚单位都被连续的碳壳包覆。研究并评估了该材料作为可逆储能阳极的电化学性能。对该复合材料与纯镍磷的锂/钠存储性能进行了比较研究。电化学结果表明,所制备的复合材料电极作为锂离子电池和钠离子电池的高吸引力的阳极,与相同结构的镍磷亚微米球相比,表现出更好的锂/钠存储性能。通过一系列基于形态、结构、电导率和动力学特性的对比实验,探讨了亚微米球增强储能性能的原因。

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