General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries

Carbon nanotubes (CNTs) possess remarkable mechanical, electrical, thermal, and optical properties that predestine them for numerous potential applications. The conventional chemical vapor deposition (CVD) route for the production of CNTs, however, suffers from costly and complex issues. Herein, we...

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Main Authors: Zhaolin Na, Ruifang Yao, Qing Yan, Xudong Sun, Gang Huang
Format: Article
Language:English
Published: American Association for the Advancement of Science 2019-01-01
Series:Research
Online Access:http://dx.doi.org/10.34133/2019/3616178
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spelling doaj-0a5eea9e0f474d2b9bd8dc400c2fd62f2020-11-25T02:14:01ZengAmerican Association for the Advancement of ScienceResearch2639-52742019-01-01201910.34133/2019/3616178General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow BatteriesZhaolin Na0Ruifang Yao1Qing Yan2Xudong Sun3Xudong Sun4Gang Huang5Liaoning Engineering Laboratory of Special Optical Functional Crystals,College of Environmental and Chemical Engineering,Dalian University,Dalian 116622,ChinaLiaoning Engineering Laboratory of Special Optical Functional Crystals,College of Environmental and Chemical Engineering,Dalian University,Dalian 116622,ChinaLiaoning Engineering Laboratory of Special Optical Functional Crystals,College of Environmental and Chemical Engineering,Dalian University,Dalian 116622,ChinaLiaoning Engineering Laboratory of Special Optical Functional Crystals,College of Environmental and Chemical Engineering,Dalian University,Dalian 116622,ChinaInstitute of Ceramics and Powder Metallurgy,School of Materials Science and Engineering,Northeastern University,Shenyang, Liaoning 110819,ChinaWPI Advanced Institute for Materials Research,Tohoku University,Sendai 980-8577,JapanCarbon nanotubes (CNTs) possess remarkable mechanical, electrical, thermal, and optical properties that predestine them for numerous potential applications. The conventional chemical vapor deposition (CVD) route for the production of CNTs, however, suffers from costly and complex issues. Herein, we demonstrate a general and high-yield strategy to grow nitrogen-doped CNTs (NCNTs) on three-dimensional (3D) graphite felt (GF) substrates, through a direct thermal pyrolysis process simply using a common tube furnace, instead of the costly and complex CVD method. Specifically, the NCNTs-decorated GF (NCNT-GF) electrode possesses enhanced electrocatalytic performance towards cerium redox reactions, mainly due to the catalytic effect of N atoms doped into NCNTs, and ingenious and hierarchical 3D architecture of the NCNT-GF. As a result, the cell with the NCNT-GF serving as a positive electrode shows the improved energy efficiency with increases of about 53.4% and 43.8% over the pristine GF and the acidly treated GF at a high charge/discharge rate of 30 mA cm-2, respectively. Moreover, the as-prepared NCNT catalyst-enhanced electrode is found to be highly robust and should enable a long-term cycle without detectable efficiency loss after 500 cycles. The viable synthetic strategy reported in this study will contribute to the further development of more active heteroatom-doped CNTs for redox flow batteries.http://dx.doi.org/10.34133/2019/3616178
collection DOAJ
language English
format Article
sources DOAJ
author Zhaolin Na
Ruifang Yao
Qing Yan
Xudong Sun
Xudong Sun
Gang Huang
spellingShingle Zhaolin Na
Ruifang Yao
Qing Yan
Xudong Sun
Xudong Sun
Gang Huang
General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries
Research
author_facet Zhaolin Na
Ruifang Yao
Qing Yan
Xudong Sun
Xudong Sun
Gang Huang
author_sort Zhaolin Na
title General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries
title_short General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries
title_full General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries
title_fullStr General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries
title_full_unstemmed General Growth of Carbon Nanotubes for Cerium Redox Reactions in High-Efficiency Redox Flow Batteries
title_sort general growth of carbon nanotubes for cerium redox reactions in high-efficiency redox flow batteries
publisher American Association for the Advancement of Science
series Research
issn 2639-5274
publishDate 2019-01-01
description Carbon nanotubes (CNTs) possess remarkable mechanical, electrical, thermal, and optical properties that predestine them for numerous potential applications. The conventional chemical vapor deposition (CVD) route for the production of CNTs, however, suffers from costly and complex issues. Herein, we demonstrate a general and high-yield strategy to grow nitrogen-doped CNTs (NCNTs) on three-dimensional (3D) graphite felt (GF) substrates, through a direct thermal pyrolysis process simply using a common tube furnace, instead of the costly and complex CVD method. Specifically, the NCNTs-decorated GF (NCNT-GF) electrode possesses enhanced electrocatalytic performance towards cerium redox reactions, mainly due to the catalytic effect of N atoms doped into NCNTs, and ingenious and hierarchical 3D architecture of the NCNT-GF. As a result, the cell with the NCNT-GF serving as a positive electrode shows the improved energy efficiency with increases of about 53.4% and 43.8% over the pristine GF and the acidly treated GF at a high charge/discharge rate of 30 mA cm-2, respectively. Moreover, the as-prepared NCNT catalyst-enhanced electrode is found to be highly robust and should enable a long-term cycle without detectable efficiency loss after 500 cycles. The viable synthetic strategy reported in this study will contribute to the further development of more active heteroatom-doped CNTs for redox flow batteries.
url http://dx.doi.org/10.34133/2019/3616178
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