Literature DB >> 29294295

Si/Ag/C Nanohybrids with in Situ Incorporation of Super-Small Silver Nanoparticles: Tiny Amount, Huge Impact.

Shanshan Yin1,2, Dong Zhao3, Qing Ji1,4, Yonggao Xia1, Senlin Xia5, Xinming Wang1, Meimei Wang1, Jianzhen Ban1,6, Yi Zhang1,2, Ezzeldin Metwalli5, Xiaoyan Wang1,7, Ying Xiao1, Xiuxia Zuo1,7, Shuang Xie1,7, Kai Fang1,6, Suzhe Liang1,2, Luyao Zheng1,7, Bao Qiu1, Zhaohui Yang8, Yichao Lin1, Liang Chen1, Cundong Wang2, Zhaoping Liu1, Jin Zhu1, Peter Müller-Buschbaum5, Ya-Jun Cheng1,9.   

Abstract

Silicon (Si) has been regarded as one of the most promising anodes for next-generation lithium-ion batteries (LIBs) due to its exceptional capacity, appropriate voltage profile, and reliable operation safety. However, poor cyclic stability and moderate rate performance have been critical drawbacks to hamper the practical application of Si-based anodes. It has been one of the central issues to develop new strategies to improve the cyclic and rate performance of the Si-based lithium-ion battery anodes. In this work, super-small metal nanoparticles (2.9 nm in diameter) are in situ synthesized and homogeneously embedded in the in situ formed nitrogen-doped carbon matrix, as demonstrated by the Si/Ag/C nanohybrid, where epoxy resin monomers are used as solvent and carbon source. With tiny amount of silver (2.59% by mass), the Si/Ag/C nanohybrid exhibits superior rate performance compared to the bare Si/C sample. Systematic structure characterization and electrochemical performance tests of the Si/Ag/C nanohybrids have been performed. The mechanism for the enhanced rate performance is investigated and elaborated. The temperature-dependent I-V behavior of the Si/Ag/C nanohybrids with tuned silver contents is measured. Based on the model, it is found that the super-small silver nanoparticles mainly increase charge carrier mobility instead of the charge carrier density in the Si/Ag/C nanohybrids. The evaluation of the total electron transportation length provided by the silver nanoparticles within the electrode also suggests significantly enhanced charge carrier mobility. The existence of tremendous amounts of super-small silver nanoparticles with excellent mechanical properties also contributes to the slightly improved cyclic stability compared to that of simple Si/C anodes.

Entities:  

Keywords:  anode; epoxy resin; lithium-ion battery; nanohybrid; silicon; silver nanoparticles; super-small

Year:  2018        PMID: 29294295     DOI: 10.1021/acsnano.7b08560

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  3 in total

1.  Synthesis and the growth mechanism of ultrafine silver nanowires by using 5-chloro-2-thienylmagnesium bromide as the additive.

Authors:  Zhengyang Fan; Jie Chen; Huaming Mao; Jungang Yin; Wei Dai; Linlin He; Hongwei Yang
Journal:  RSC Adv       Date:  2021-11-17       Impact factor: 4.036

2.  Improved performances of lithium-ion batteries using intercalated a-Si-Ag thin film layers as electrodes.

Authors:  Pan Wang; Ling Tong; Rongfei Wang; Anran Chen; Wenzhong Fang; Kun Yue; Tao Sun; Yu Yang
Journal:  RSC Adv       Date:  2018-12-11       Impact factor: 4.036

3.  Impact of CO2 activation on the structure, composition, and performance of Sb/C nanohybrid lithium/sodium-ion battery anodes.

Authors:  Suzhe Liang; Ya-Jun Cheng; Xiaoyan Wang; Zhuijun Xu; Liujia Ma; Hewei Xu; Qing Ji; Xiuxia Zuo; Peter Müller-Buschbaum; Yonggao Xia
Journal:  Nanoscale Adv       Date:  2021-01-28
  3 in total

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