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Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage

To achieve a high power density of lithium-ion batteries, it is essential to develop anode materials with high capacity and excellent stability. Cobalt oxide (Co(3)O(4)) is a prospective anode material on account of its high energy density. However, the poor electrical conductivity and volumetric ch...

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Autores principales: Wang, He, Song, Yan, Li, Yanwei, Wang, Mengwei, Ma, Qianli, Yu, Wensheng, Li, Dan, Dong, Xiangting, Wang, Jinxian, Liu, Guixia
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/PMC9085501/
https://www.ncbi.nlm.nih.gov/pubmed/35548756
http://dx.doi.org/10.1039/c8ra06307a
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author Wang, He
Song, Yan
Li, Yanwei
Wang, Mengwei
Ma, Qianli
Yu, Wensheng
Li, Dan
Dong, Xiangting
Wang, Jinxian
Liu, Guixia
author_facet Wang, He
Song, Yan
Li, Yanwei
Wang, Mengwei
Ma, Qianli
Yu, Wensheng
Li, Dan
Dong, Xiangting
Wang, Jinxian
Liu, Guixia
author_sort Wang, He
collection PubMed
description To achieve a high power density of lithium-ion batteries, it is essential to develop anode materials with high capacity and excellent stability. Cobalt oxide (Co(3)O(4)) is a prospective anode material on account of its high energy density. However, the poor electrical conductivity and volumetric changes of the active material induce a dramatic decrease in capacity during cycling. Herein, a hierarchical porous hybrid nanofiber of ZIF-derived Co(3)O(4) and continuous carbon nanofibers (CNFs) is rationally constructed and utilized as an anode material for lithium-ion batteries. The PAN/ZIF-67 heterostructure composite nanofibers were first synthesized using electrospinning technology followed by the in situ growth method, and then the CNFs/Co(3)O(4) nanofibers were obtained by subsequent multi-step thermal treatment. The continuous porous conductive carbon backbone not only effectively provides a channel to expedite lithium ion diffusion and electrode transfer, but also accommodates volume change of Co(3)O(4) during the charge–discharge cycling process. The electrode exhibits a high discharge capacity of 1352 mA h g(−1) after 500 cycles at a constant current density of 0.2 A g(−1). Additionally, the composites deliver a discharge capacity of 661 mA h g(−1) with a small capacity decay of 0.078% per cycle at a high current density of 2 A g(−1) after 500 cycles. This hierarchical porous structural design presents an effective strategy to develop a hybrid nanofiber for improving lithium ion storage.
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spelling pubmed-90855012022-05-10 Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage Wang, He Song, Yan Li, Yanwei Wang, Mengwei Ma, Qianli Yu, Wensheng Li, Dan Dong, Xiangting Wang, Jinxian Liu, Guixia RSC Adv Chemistry To achieve a high power density of lithium-ion batteries, it is essential to develop anode materials with high capacity and excellent stability. Cobalt oxide (Co(3)O(4)) is a prospective anode material on account of its high energy density. However, the poor electrical conductivity and volumetric changes of the active material induce a dramatic decrease in capacity during cycling. Herein, a hierarchical porous hybrid nanofiber of ZIF-derived Co(3)O(4) and continuous carbon nanofibers (CNFs) is rationally constructed and utilized as an anode material for lithium-ion batteries. The PAN/ZIF-67 heterostructure composite nanofibers were first synthesized using electrospinning technology followed by the in situ growth method, and then the CNFs/Co(3)O(4) nanofibers were obtained by subsequent multi-step thermal treatment. The continuous porous conductive carbon backbone not only effectively provides a channel to expedite lithium ion diffusion and electrode transfer, but also accommodates volume change of Co(3)O(4) during the charge–discharge cycling process. The electrode exhibits a high discharge capacity of 1352 mA h g(−1) after 500 cycles at a constant current density of 0.2 A g(−1). Additionally, the composites deliver a discharge capacity of 661 mA h g(−1) with a small capacity decay of 0.078% per cycle at a high current density of 2 A g(−1) after 500 cycles. This hierarchical porous structural design presents an effective strategy to develop a hybrid nanofiber for improving lithium ion storage. The Royal Society of Chemistry 2018-08-31 /pmc/articles/PMC9085501/ /pubmed/35548756 http://dx.doi.org/10.1039/c8ra06307a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wang, He
Song, Yan
Li, Yanwei
Wang, Mengwei
Ma, Qianli
Yu, Wensheng
Li, Dan
Dong, Xiangting
Wang, Jinxian
Liu, Guixia
Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage
title Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage
title_full Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage
title_fullStr Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage
title_full_unstemmed Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage
title_short Rationally designed hierarchical porous CNFs/Co(3)O(4) nanofiber-based anode for realizing high lithium ion storage
title_sort rationally designed hierarchical porous cnfs/co(3)o(4) nanofiber-based anode for realizing high lithium ion storage
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085501/
https://www.ncbi.nlm.nih.gov/pubmed/35548756
http://dx.doi.org/10.1039/c8ra06307a
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