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Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature

Carbon nanofibers (CNFs) with excellent electrochemical performance represent a novel class of carbon nanostructures for boosting electrochemical applications, especially sustainable electrochemical energy conversion and storage applications. This work builds on an earlier study where the CNFs were...

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Detalles Bibliográficos
Autores principales: Tao, Lei, Huang, Yuanbo, Yang, Xiaoqin, Zheng, Yunwu, Liu, Can, Di, Mingwei, Zheng, Zhifeng
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/PMC9078397/
https://www.ncbi.nlm.nih.gov/pubmed/35540347
http://dx.doi.org/10.1039/c7ra13639k
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author Tao, Lei
Huang, Yuanbo
Yang, Xiaoqin
Zheng, Yunwu
Liu, Can
Di, Mingwei
Zheng, Zhifeng
author_facet Tao, Lei
Huang, Yuanbo
Yang, Xiaoqin
Zheng, Yunwu
Liu, Can
Di, Mingwei
Zheng, Zhifeng
author_sort Tao, Lei
collection PubMed
description Carbon nanofibers (CNFs) with excellent electrochemical performance represent a novel class of carbon nanostructures for boosting electrochemical applications, especially sustainable electrochemical energy conversion and storage applications. This work builds on an earlier study where the CNFs were prepared from a waste biomass (walnut shells) using a relatively simple procedure of liquefying the biomass, and electrospinning and carbonizing the fibrils. We further improved the mass ratio of the liquefying process and investigated the effects of the high temperature carbonization process at 1000, 1500 and 2000 °C, and comprehensively characterized the morphology, structural properties, and specific surface area of walnut shell-derived CNFs; and their electrochemical performance was also investigated as electrode materials in Li-ion batteries. Results demonstrated that the CNF anode obtained at 1000 °C exhibits a high specific capacity up to 271.7 mA h g(−1) at 30 mA g(−1), good rate capacity (131.3 and 102.2 mA h g(−1) at 1 A g(−1) and 2 A g(−1), respectively), and excellent cycling performance (above 200 mA h g(−1) specific capacity without any capacity decay after 200 cycles at 100 mA g(−1)). The present work demonstrates the great potential for converting low-cost biomass to high-value carbon materials for applications in energy storage.
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spelling pubmed-90783972022-05-09 Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature Tao, Lei Huang, Yuanbo Yang, Xiaoqin Zheng, Yunwu Liu, Can Di, Mingwei Zheng, Zhifeng RSC Adv Chemistry Carbon nanofibers (CNFs) with excellent electrochemical performance represent a novel class of carbon nanostructures for boosting electrochemical applications, especially sustainable electrochemical energy conversion and storage applications. This work builds on an earlier study where the CNFs were prepared from a waste biomass (walnut shells) using a relatively simple procedure of liquefying the biomass, and electrospinning and carbonizing the fibrils. We further improved the mass ratio of the liquefying process and investigated the effects of the high temperature carbonization process at 1000, 1500 and 2000 °C, and comprehensively characterized the morphology, structural properties, and specific surface area of walnut shell-derived CNFs; and their electrochemical performance was also investigated as electrode materials in Li-ion batteries. Results demonstrated that the CNF anode obtained at 1000 °C exhibits a high specific capacity up to 271.7 mA h g(−1) at 30 mA g(−1), good rate capacity (131.3 and 102.2 mA h g(−1) at 1 A g(−1) and 2 A g(−1), respectively), and excellent cycling performance (above 200 mA h g(−1) specific capacity without any capacity decay after 200 cycles at 100 mA g(−1)). The present work demonstrates the great potential for converting low-cost biomass to high-value carbon materials for applications in energy storage. The Royal Society of Chemistry 2018-02-14 /pmc/articles/PMC9078397/ /pubmed/35540347 http://dx.doi.org/10.1039/c7ra13639k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Tao, Lei
Huang, Yuanbo
Yang, Xiaoqin
Zheng, Yunwu
Liu, Can
Di, Mingwei
Zheng, Zhifeng
Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature
title Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature
title_full Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature
title_fullStr Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature
title_full_unstemmed Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature
title_short Flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: I. Effect of carbonization temperature
title_sort flexible anode materials for lithium-ion batteries derived from waste biomass-based carbon nanofibers: i. effect of carbonization temperature
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9078397/
https://www.ncbi.nlm.nih.gov/pubmed/35540347
http://dx.doi.org/10.1039/c7ra13639k
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