Cargando…

Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage

The combination of activity-enriched heteroatoms and highly-conductive networks is a powerful strategy to craft carbon-based electrodes for high-efficiency electrochemical energy storage. Herein, N-doped carbon (N-C) coated carbon nanotubes (N-CNTs) were fabricated via a facile in situ synthesis of...

Descripción completa

Detalles Bibliográficos
Autores principales: He, Yi, Li, Hong, Zhang, Qing, He, Chengen, Zhang, Xiaofang, Yang, Yingkui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076390/
https://www.ncbi.nlm.nih.gov/pubmed/35540035
http://dx.doi.org/10.1039/c9ra06289k
_version_ 1784701914215088128
author He, Yi
Li, Hong
Zhang, Qing
He, Chengen
Zhang, Xiaofang
Yang, Yingkui
author_facet He, Yi
Li, Hong
Zhang, Qing
He, Chengen
Zhang, Xiaofang
Yang, Yingkui
author_sort He, Yi
collection PubMed
description The combination of activity-enriched heteroatoms and highly-conductive networks is a powerful strategy to craft carbon-based electrodes for high-efficiency electrochemical energy storage. Herein, N-doped carbon (N-C) coated carbon nanotubes (N-CNTs) were fabricated via a facile in situ synthesis of polyimide in the presence of carbon nanotubes (CNTs), followed by carbonization. The polyimide-divided N-C layers were uniformly covered on the surface of CNTs with a tailored layer thickness. The as-fabricated N-CNTs were further used as electrode active materials for energy storage. When employed as the electrodes for supercapacitors, the N-CNTs exhibited a specific capacitance of 63 F g(−1) at 0.1 A g(−1) (an energy density of 1.4 W h kg(−1) at a power density of 20 W kg(−1)), which was much higher than that of pure N-C (5 F g(−1)) and CNTs (13 F g(−1)). The supercapacitor also retained 66.7% of its initial capacitance (42 F g(−1) at 10 A g(−1)) after a 100-fold increase in the current density and nearly 100% of its initial capacitance after running 10 000 cycles. Furthermore, functioning as an anode material for a Li-ion battery, the N-CNTs also delivered a larger reversible capacity (432 mA h g(−1) at 50 mA g(−1)), higher rate capability, and better cycling stability compared to pure CNTs. The electrochemical performances of the N-CNTs were improved overall due to the synergistic effects of interconnected 3D networks and core–shell structures capable of facilitating electrolyte percolation and charge transportation, enhancing conductivity and surface/interface wettability, and contributing additional pseudocapacitance.
format Online
Article
Text
id pubmed-9076390
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90763902022-05-09 Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage He, Yi Li, Hong Zhang, Qing He, Chengen Zhang, Xiaofang Yang, Yingkui RSC Adv Chemistry The combination of activity-enriched heteroatoms and highly-conductive networks is a powerful strategy to craft carbon-based electrodes for high-efficiency electrochemical energy storage. Herein, N-doped carbon (N-C) coated carbon nanotubes (N-CNTs) were fabricated via a facile in situ synthesis of polyimide in the presence of carbon nanotubes (CNTs), followed by carbonization. The polyimide-divided N-C layers were uniformly covered on the surface of CNTs with a tailored layer thickness. The as-fabricated N-CNTs were further used as electrode active materials for energy storage. When employed as the electrodes for supercapacitors, the N-CNTs exhibited a specific capacitance of 63 F g(−1) at 0.1 A g(−1) (an energy density of 1.4 W h kg(−1) at a power density of 20 W kg(−1)), which was much higher than that of pure N-C (5 F g(−1)) and CNTs (13 F g(−1)). The supercapacitor also retained 66.7% of its initial capacitance (42 F g(−1) at 10 A g(−1)) after a 100-fold increase in the current density and nearly 100% of its initial capacitance after running 10 000 cycles. Furthermore, functioning as an anode material for a Li-ion battery, the N-CNTs also delivered a larger reversible capacity (432 mA h g(−1) at 50 mA g(−1)), higher rate capability, and better cycling stability compared to pure CNTs. The electrochemical performances of the N-CNTs were improved overall due to the synergistic effects of interconnected 3D networks and core–shell structures capable of facilitating electrolyte percolation and charge transportation, enhancing conductivity and surface/interface wettability, and contributing additional pseudocapacitance. The Royal Society of Chemistry 2019-12-11 /pmc/articles/PMC9076390/ /pubmed/35540035 http://dx.doi.org/10.1039/c9ra06289k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
He, Yi
Li, Hong
Zhang, Qing
He, Chengen
Zhang, Xiaofang
Yang, Yingkui
Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage
title Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage
title_full Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage
title_fullStr Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage
title_full_unstemmed Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage
title_short Homogeneous coating of carbon nanotubes with tailored N-doped carbon layers for improved electrochemical energy storage
title_sort homogeneous coating of carbon nanotubes with tailored n-doped carbon layers for improved electrochemical energy storage
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076390/
https://www.ncbi.nlm.nih.gov/pubmed/35540035
http://dx.doi.org/10.1039/c9ra06289k
work_keys_str_mv AT heyi homogeneouscoatingofcarbonnanotubeswithtailoredndopedcarbonlayersforimprovedelectrochemicalenergystorage
AT lihong homogeneouscoatingofcarbonnanotubeswithtailoredndopedcarbonlayersforimprovedelectrochemicalenergystorage
AT zhangqing homogeneouscoatingofcarbonnanotubeswithtailoredndopedcarbonlayersforimprovedelectrochemicalenergystorage
AT hechengen homogeneouscoatingofcarbonnanotubeswithtailoredndopedcarbonlayersforimprovedelectrochemicalenergystorage
AT zhangxiaofang homogeneouscoatingofcarbonnanotubeswithtailoredndopedcarbonlayersforimprovedelectrochemicalenergystorage
AT yangyingkui homogeneouscoatingofcarbonnanotubeswithtailoredndopedcarbonlayersforimprovedelectrochemicalenergystorage