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通过石墨烯和沥青基碳的综合利用实现具有高初始库仑效率、长循环寿命和优异倍率性能的硅阳极。

Si anode with high initial Coulombic efficiency, long cycle life, and superior rate capability by integrated utilization of graphene and pitch-based carbon.

作者信息

Li Hai, Li Zhao, Qi Jie, Wang Ziyang, Liu Song, Long Yu, Tan Yan

机构信息

School of Material and Chemical Engineering, Tongren University, Tongren 554300, Guizhou Province, People's Republic of China.

Guizhou Zhongke Shinzoom Technology Co., Ltd, Tongren 554300, Guizhou Province, People's Republic of China.

出版信息

Nanotechnology. 2024 Jul 2;35(38). doi: 10.1088/1361-6528/ad5aa3.

Abstract

A variety of strategies have been developed to enhance the cycling stability of Si-based anodes in lithium-ion batteries. Although significant progress has been made in enhancing the cycling stability of Si-based anodes, the low initial Coulombic efficiency (ICE) remains a significant challenge to their commercial application. Herein, pitch-based carbon (C) coated Si nanoparticles (NPs) were wrapped by graphene (G) to obtain Si@C/G composite with a small specific surface area of 11.3 mg, resulting in a high ICE of 91.2% at 500 mA g. Moreover, the integrated utilization of graphene and soft carbon derived from the low-cost petroleum pitch strongly promotes the electrical conductivity, structure stability, and reaction kinetics of Si NPs. Consequently, the synthesized Si@C/G with a Si loading of 54.7% delivers large reversible capacity (1191 mAh gat 500 mA g), long cycle life over 200 cycles (a capacity retention of 87.1%), and superior rate capability (952 mAh gat 1500 mA g). When coupled with a homemade LiNiCoMnO(NCM811) cathode in a full cell, it exhibits a promising cycling stability for 200 cycles. This work presents an innovative approach for the manufacture of Si-based anode materials with commercial application.

摘要

人们已经开发出多种策略来提高锂离子电池中硅基负极的循环稳定性。尽管在提高硅基负极的循环稳定性方面已经取得了显著进展,但低初始库仑效率(ICE)仍然是其商业应用面临的重大挑战。在此,通过石墨烯(G)包裹沥青基碳(C)包覆的硅纳米颗粒(NPs),获得了比表面积小至11.3 mg的Si@C/G复合材料,在500 mA g下初始库仑效率高达91.2%。此外,低成本石油沥青衍生的石墨烯和软碳的综合利用极大地促进了硅纳米颗粒的电导率、结构稳定性和反应动力学。因此,硅负载量为54.7%的合成Si@C/G具有大的可逆容量(500 mA g下为1191 mAh g)、超过200次循环的长循环寿命(容量保持率为87.1%)以及优异的倍率性能(1500 mA g下为952 mAh g)。当与自制的LiNiCoMnO(NCM811)正极在全电池中耦合时,它在200次循环中表现出良好的循环稳定性。这项工作为制造具有商业应用价值的硅基负极材料提出了一种创新方法。

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