Literature DB >> 30398846

Mechanistic Origin of the High Performance of Yolk@Shell Bi2S3@N-Doped Carbon Nanowire Electrodes.

Longze Zhao1, Hong-Hui Wu2, Chenghao Yang3, Qiaobao Zhang1, Guiming Zhong4, Zhiming Zheng1, Huixin Chen4, Jinming Wang1, Kai He5, Baolin Wang6, Ting Zhu6,7, Xiao Cheng Zeng2, Meilin Liu7, Ming-Sheng Wang1.   

Abstract

High-performance lithium-ion batteries are commonly built with heterogeneous composite electrodes that combine multiple active components for serving various electrochemical and structural functions. Engineering these heterogeneous composite electrodes toward drastically improved battery performance is hinged on a fundamental understanding of the mechanisms of multiple active components and their synergy or trade-off effects. Herein, we report a rational design, fabrication, and understanding of yolk@shell Bi2S3@N-doped mesoporous carbon (C) composite anode, consisting of a Bi2S3 nanowire (NW) core within a hollow space surrounded by a thin shell of N-doped mesoporous C. This composite anode exhibits desirable rate performance and long cycle stability (700 cycles, 501 mAhg-1 at 1.0 Ag-1, 85% capacity retention). By in situ transmission electron microscopy (TEM), X-ray diffraction, and NMR experiments and computational modeling, we elucidate the dominant mechanisms of the phase transformation, structural evolution, and lithiation kinetics of the Bi2S3 NWs anode. Our combined in situ TEM experiments and finite element simulations reveal that the hollow space between the Bi2S3 NWs core and carbon shell can effectively accommodate the lithiation-induced expansion of Bi2S3 NWs without cracking C shells. This work demonstrates an effective strategy of engineering the yolk@shell-architectured anodes and also sheds light onto harnessing the complex multistep reactions in metal sulfides to enable high-performance lithium-ion batteries.

Entities:  

Keywords:  in situ experiments; lithiation mechanism; lithium-ion battery; multiple computational modeling; yolk@shell composite anode

Year:  2018        PMID: 30398846     DOI: 10.1021/acsnano.8b07319

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


  5 in total

1.  Investigation of K-ion storage performances in a bismuth sulfide-carbon nanotube composite anode.

Authors:  Jang-Yeon Hwang; Rudra Kumar; Hee Min Kim; Muhammad Hilmy Alfaruqi; JaeKook Kim; Yang-Kook Sun
Journal:  RSC Adv       Date:  2020-02-12       Impact factor: 4.036

2.  Improved Electrochemical Performance of 0.5Li2MnO3·0.5LiNi0.5Mn0.5O2 Cathode Materials for Lithium Ion Batteries Synthesized by Ionic-Liquid-Assisted Hydrothermal Method.

Authors:  Yanhong Xiang; Youliang Jiang; Saiqiu Liu; Jianhua Wu; Zhixiong Liu; Ling Zhu; Lizhi Xiong; Zeqiang He; Xianwen Wu
Journal:  Front Chem       Date:  2020-11-23       Impact factor: 5.221

3.  Spherical Li4Ti5O12/NiO Composite With Enhanced Capacity and Rate Performance as Anode Material for Lithium-Ion Batteries.

Authors:  Jiequn Liu; Shengkui Zhong; Qingrong Chen; Luchao Meng; Qianyi Wang; Zhijian Liao; Jian Zhou
Journal:  Front Chem       Date:  2020-12-15       Impact factor: 5.221

4.  A reduced graphene oxide-borate compound-loaded melamine sponge/silicone rubber composite with ultra-high dielectric constant.

Authors:  Hong Zhang; Chuan-Guo Ma; Pei-Bang Dai; Jian Zhang
Journal:  RSC Adv       Date:  2019-05-08       Impact factor: 4.036

5.  Cr2O3 nanosheet/carbon cloth anode with strong interaction and fast charge transfer for pseudocapacitive energy storage in lithium-ion batteries.

Authors:  Donglei Guo; Mengke Yang; Lilei Zhang; Yicong Li; Jinxiang Wang; Guilong Liu; Naiteng Wu; Jang-Kyo Kim; Xianming Liu
Journal:  RSC Adv       Date:  2019-10-17       Impact factor: 4.036

  5 in total

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