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Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery

Yolk–shell structure is considered to be a well-designed structure of silicon-based anode. However, there is only one point (point-to-point contact) in the contact region between the silicon core and the shell in this structure, which severely limits the ion transport ability of the electrode. In or...

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Autores principales: Wu, Pengfei, Guo, Changqing, Han, Jiangtao, Yu, Kairui, Dong, Xichao, Yue, Guanghui, Yue, Huijuan, Guan, Yan, Liu, Anhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9078599/
https://www.ncbi.nlm.nih.gov/pubmed/35541848
http://dx.doi.org/10.1039/c7ra13606d
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author Wu, Pengfei
Guo, Changqing
Han, Jiangtao
Yu, Kairui
Dong, Xichao
Yue, Guanghui
Yue, Huijuan
Guan, Yan
Liu, Anhua
author_facet Wu, Pengfei
Guo, Changqing
Han, Jiangtao
Yu, Kairui
Dong, Xichao
Yue, Guanghui
Yue, Huijuan
Guan, Yan
Liu, Anhua
author_sort Wu, Pengfei
collection PubMed
description Yolk–shell structure is considered to be a well-designed structure of silicon-based anode. However, there is only one point (point-to-point contact) in the contact region between the silicon core and the shell in this structure, which severely limits the ion transport ability of the electrode. In order to solve this problem, it is important that the core and shell of the core–shell structure are closely linked (face-to-face contact), which ensures good ion diffusion ability. Herein, a double core–shell nanostructure (Si@C@SiO(2)) was designed for the first time to improve the cycling performance of the electrode by utilising the unique advantages of the SiO(2) layer and the closely contacted carbon layer. The improved cycling performance was evidenced by comparing the cycling properties of similar yolk–shell structures (Si@void@SiO(2)) with equal size of the intermediate shell. Based on the comparison and analysis of the experimental data, Si@C@SiO(2) had more stable cycling performance and exceeded that of Si@void@SiO(2) after the 276(th) cycle. More interestingly, the electron/ion transport ability of electrode was further improved by combination of Si@C@SiO(2) with reduced graphene oxide (RGO). Clearly, at a current density of 500 mA g(−1), the reversible capacity was 753.8 mA h g(−1) after 500 cycles, which was 91% of the specific capacity of the first cycle at this current density.
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spelling pubmed-90785992022-05-09 Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery Wu, Pengfei Guo, Changqing Han, Jiangtao Yu, Kairui Dong, Xichao Yue, Guanghui Yue, Huijuan Guan, Yan Liu, Anhua RSC Adv Chemistry Yolk–shell structure is considered to be a well-designed structure of silicon-based anode. However, there is only one point (point-to-point contact) in the contact region between the silicon core and the shell in this structure, which severely limits the ion transport ability of the electrode. In order to solve this problem, it is important that the core and shell of the core–shell structure are closely linked (face-to-face contact), which ensures good ion diffusion ability. Herein, a double core–shell nanostructure (Si@C@SiO(2)) was designed for the first time to improve the cycling performance of the electrode by utilising the unique advantages of the SiO(2) layer and the closely contacted carbon layer. The improved cycling performance was evidenced by comparing the cycling properties of similar yolk–shell structures (Si@void@SiO(2)) with equal size of the intermediate shell. Based on the comparison and analysis of the experimental data, Si@C@SiO(2) had more stable cycling performance and exceeded that of Si@void@SiO(2) after the 276(th) cycle. More interestingly, the electron/ion transport ability of electrode was further improved by combination of Si@C@SiO(2) with reduced graphene oxide (RGO). Clearly, at a current density of 500 mA g(−1), the reversible capacity was 753.8 mA h g(−1) after 500 cycles, which was 91% of the specific capacity of the first cycle at this current density. The Royal Society of Chemistry 2018-03-01 /pmc/articles/PMC9078599/ /pubmed/35541848 http://dx.doi.org/10.1039/c7ra13606d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wu, Pengfei
Guo, Changqing
Han, Jiangtao
Yu, Kairui
Dong, Xichao
Yue, Guanghui
Yue, Huijuan
Guan, Yan
Liu, Anhua
Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery
title Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery
title_full Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery
title_fullStr Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery
title_full_unstemmed Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery
title_short Fabrication of double core–shell Si-based anode materials with nanostructure for lithium-ion battery
title_sort fabrication of double core–shell si-based anode materials with nanostructure for lithium-ion battery
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9078599/
https://www.ncbi.nlm.nih.gov/pubmed/35541848
http://dx.doi.org/10.1039/c7ra13606d
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