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嵌入碳纳米纤维中的尺寸可控硫化镍纳米颗粒作为基于镁的混合电池的高倍率转换阴极

Size-Controllable Nickel Sulfide Nanoparticles Embedded in Carbon Nanofibers as High-Rate Conversion Cathodes for Hybrid Mg-Based Battery.

作者信息

Zhu Guilei, Xia Guanglin, Pan Hongge, Yu Xuebin

机构信息

Department of Materials Science, Fudan University, Shanghai, 200433, China.

Xian Technol. Univ., Inst. Sci. & Technol. New Energy, Xian, 710021, China.

出版信息

Adv Sci (Weinh). 2022 May;9(13):e2106107. doi: 10.1002/advs.202106107. Epub 2022 Mar 3.

Abstract

The integration of highly-safe Mg anode and fast Li kinetics endows hybrid Mg /Li batteries (MLIBs) a promising future, but the practical application is circumvented by the lack of appropriate cathodes that enable the realization of an enough participation of Mg in the reactions, resulting in a high dependence on Li . Herein, the authors develop a series of size-controllable nickel sulfide nanoparticles embedded in carbon nanofibers (NiS@C) with synergistic effect of particle diameter and carbon content as the cathode material for MLIBs. The optimized particle size is designed to maximize the utilization of the active material and remit internal stress, and appropriate carbon encapsulation efficiently inhibiting the pulverization of particles and accelerates the ability of conducting ions and electrons. In consequence, the representative NiS@C delivers superior electrochemical performance with a highest discharge capacity of 435 mAh g at 50 mA g . Such conversion cathode also exhibits excellent rate performance and remarkable cycle life. Significantly, the conversion mechanism of NiS in MLIBs is unambiguously demonstrated for the first time, affirming the corporate involvement of both Mg and Li at the cathodic side. This work underlines a guide for developing conversion-type materials with high rate capability and cyclic performance for energy storage applications.

摘要

高安全性镁阳极与快速锂动力学的结合赋予了混合镁/锂电池(MLIBs)广阔的前景,但由于缺乏能使镁充分参与反应的合适阴极,其实际应用受到阻碍,导致对锂的高度依赖。在此,作者开发了一系列嵌入碳纳米纤维的尺寸可控硫化镍纳米颗粒(NiS@C),其粒径和碳含量具有协同效应,作为MLIBs的阴极材料。优化后的粒径旨在最大限度地提高活性材料的利用率并缓解内部应力,适当的碳包覆有效地抑制了颗粒的粉化,并加速了离子和电子的传导能力。因此,具有代表性的NiS@C在50 mA g下展现出卓越的电化学性能,最高放电容量为435 mAh g 。这种转化型阴极还表现出优异的倍率性能和出色的循环寿命。重要的是,首次明确证明了MLIBs中NiS的转化机制,证实了镁和锂在阴极侧的共同参与。这项工作为开发具有高倍率性能和循环性能的储能应用转化型材料提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4478/9069199/ce8513acbf20/ADVS-9-2106107-g002.jpg

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