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Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors

Cost-efficient carbonaceous materials have been utilized extensively for advanced electrochemical supercapacitors. However, modest gravimetric/volumetric capacitances are the insuperable bottleneck in their practical applications. Herein, we develop a simple yet scalable method to fabricate low-cost...

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Autores principales: Chen, Qiuli, Sun, Jinfeng, Wang, Zhengluo, Zhao, Zhiwei, Zhang, Yanru, Liu, Yang, Hou, Linrui, Yuan, Changzhou
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/PMC9078741/
https://www.ncbi.nlm.nih.gov/pubmed/35541851
http://dx.doi.org/10.1039/c8ra00858b
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author Chen, Qiuli
Sun, Jinfeng
Wang, Zhengluo
Zhao, Zhiwei
Zhang, Yanru
Liu, Yang
Hou, Linrui
Yuan, Changzhou
author_facet Chen, Qiuli
Sun, Jinfeng
Wang, Zhengluo
Zhao, Zhiwei
Zhang, Yanru
Liu, Yang
Hou, Linrui
Yuan, Changzhou
author_sort Chen, Qiuli
collection PubMed
description Cost-efficient carbonaceous materials have been utilized extensively for advanced electrochemical supercapacitors. However, modest gravimetric/volumetric capacitances are the insuperable bottleneck in their practical applications. Herein, we develop a simple yet scalable method to fabricate low-cost micro-/mesoporous N/O-enriched carbon (NOC-K) by using natural rose multiflora as a precursor with KOH activation. The biomass-derived NOC-K is endowed with a large surface area of ∼1646.7 m(2) g(−1), micro-/mesoporosity with ∼61.3% microporosity, high surface wettability, and a high content of N (∼1.2 at%)/O (∼26.7 at%) species. When evaluated as an electroactive material for supercapacitors, the NOC-K electrode (5 mg cm(−2)) yields large gravimetric/volumetric specific capacitances of ∼340.0 F g(−1) (∼238.0 F cm(−3)) at 0.5 A g(−1), and even ∼200.0 F g(−1) (∼140.0 F cm(−3)) at 5.0 A g(−1), a low capacitance decay of ∼4.2% after 8200 consecutive cycles, and a striking specific energy of ∼8.3 W h kg(−1) in aqueous KOH electrolyte, benefiting from its intrinsic structural and compositional superiorities. Moreover, a remarkable specific energy of ∼52.6 W h kg(−1) and ∼96.6% capacitance retention over 6500 cycles for the NOC-K based symmetric cell are obtained with the organic electrolyte. More promisingly, the competitive NOC-K demonstrates enormous potential towards advanced supercapacitors both with aqueous and organic electrolytes as a sustainable electrode candidate.
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spelling pubmed-90787412022-05-09 Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors Chen, Qiuli Sun, Jinfeng Wang, Zhengluo Zhao, Zhiwei Zhang, Yanru Liu, Yang Hou, Linrui Yuan, Changzhou RSC Adv Chemistry Cost-efficient carbonaceous materials have been utilized extensively for advanced electrochemical supercapacitors. However, modest gravimetric/volumetric capacitances are the insuperable bottleneck in their practical applications. Herein, we develop a simple yet scalable method to fabricate low-cost micro-/mesoporous N/O-enriched carbon (NOC-K) by using natural rose multiflora as a precursor with KOH activation. The biomass-derived NOC-K is endowed with a large surface area of ∼1646.7 m(2) g(−1), micro-/mesoporosity with ∼61.3% microporosity, high surface wettability, and a high content of N (∼1.2 at%)/O (∼26.7 at%) species. When evaluated as an electroactive material for supercapacitors, the NOC-K electrode (5 mg cm(−2)) yields large gravimetric/volumetric specific capacitances of ∼340.0 F g(−1) (∼238.0 F cm(−3)) at 0.5 A g(−1), and even ∼200.0 F g(−1) (∼140.0 F cm(−3)) at 5.0 A g(−1), a low capacitance decay of ∼4.2% after 8200 consecutive cycles, and a striking specific energy of ∼8.3 W h kg(−1) in aqueous KOH electrolyte, benefiting from its intrinsic structural and compositional superiorities. Moreover, a remarkable specific energy of ∼52.6 W h kg(−1) and ∼96.6% capacitance retention over 6500 cycles for the NOC-K based symmetric cell are obtained with the organic electrolyte. More promisingly, the competitive NOC-K demonstrates enormous potential towards advanced supercapacitors both with aqueous and organic electrolytes as a sustainable electrode candidate. The Royal Society of Chemistry 2018-03-02 /pmc/articles/PMC9078741/ /pubmed/35541851 http://dx.doi.org/10.1039/c8ra00858b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Qiuli
Sun, Jinfeng
Wang, Zhengluo
Zhao, Zhiwei
Zhang, Yanru
Liu, Yang
Hou, Linrui
Yuan, Changzhou
Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
title Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
title_full Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
title_fullStr Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
title_full_unstemmed Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
title_short Sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
title_sort sustainable rose multiflora derived nitrogen/oxygen-enriched micro-/mesoporous carbon as a low-cost competitive electrode towards high-performance electrochemical supercapacitors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9078741/
https://www.ncbi.nlm.nih.gov/pubmed/35541851
http://dx.doi.org/10.1039/c8ra00858b
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