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Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization

Exploring a new-family of carbon-based desalinators to optimize their performances beyond the current commercial benchmark is of significance for the development of practically useful capacitive deionization (CDI) materials. Here, we have fabricated a hierarchically porous N,P-doped carbon–graphene...

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Autores principales: Guo, Jingru, Xu, Xingtao, Hill, Jonathan P., Wang, Liping, Dang, Jingjing, Kang, Yunqing, Li, Yuliang, Guan, Weisheng, Yamauchi, Yusuke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8336432/
https://www.ncbi.nlm.nih.gov/pubmed/34377418
http://dx.doi.org/10.1039/d1sc00915j
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author Guo, Jingru
Xu, Xingtao
Hill, Jonathan P.
Wang, Liping
Dang, Jingjing
Kang, Yunqing
Li, Yuliang
Guan, Weisheng
Yamauchi, Yusuke
author_facet Guo, Jingru
Xu, Xingtao
Hill, Jonathan P.
Wang, Liping
Dang, Jingjing
Kang, Yunqing
Li, Yuliang
Guan, Weisheng
Yamauchi, Yusuke
author_sort Guo, Jingru
collection PubMed
description Exploring a new-family of carbon-based desalinators to optimize their performances beyond the current commercial benchmark is of significance for the development of practically useful capacitive deionization (CDI) materials. Here, we have fabricated a hierarchically porous N,P-doped carbon–graphene 2D heterostructure (denoted NPC/rGO) by using metal–organic framework (MOF)-nanoparticle-driven assembly on graphene oxide (GO) nanosheets followed by stepwise pyrolysis and phosphorization procedures. The resulting NPC/rGO-based CDI desalinator exhibits ultrahigh deionization performance with a salt adsorption capacity of 39.34 mg g(−1) in a 1000 mg L(−1) NaCl solution at 1.2 V over 30 min with good cycling stability over 50 cycles. The excellent performance is attributed to the high specific surface area, high conductivity, favorable meso-/microporous structure together with nitrogen and phosphorus heteroatom co-doping, all of which are beneficial for the accommodation of ions and charge transport during the CDI process. More importantly, NPC/rGO exhibits a state-of-the-art CDI performance compared to the commercial benchmark and most of the previously reported carbon materials, highlighting the significance of the MOF nanoparticle-driven assembly strategy and graphene–carbon 2D heterostructures for CDI applications.
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spelling pubmed-83364322021-08-09 Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization Guo, Jingru Xu, Xingtao Hill, Jonathan P. Wang, Liping Dang, Jingjing Kang, Yunqing Li, Yuliang Guan, Weisheng Yamauchi, Yusuke Chem Sci Chemistry Exploring a new-family of carbon-based desalinators to optimize their performances beyond the current commercial benchmark is of significance for the development of practically useful capacitive deionization (CDI) materials. Here, we have fabricated a hierarchically porous N,P-doped carbon–graphene 2D heterostructure (denoted NPC/rGO) by using metal–organic framework (MOF)-nanoparticle-driven assembly on graphene oxide (GO) nanosheets followed by stepwise pyrolysis and phosphorization procedures. The resulting NPC/rGO-based CDI desalinator exhibits ultrahigh deionization performance with a salt adsorption capacity of 39.34 mg g(−1) in a 1000 mg L(−1) NaCl solution at 1.2 V over 30 min with good cycling stability over 50 cycles. The excellent performance is attributed to the high specific surface area, high conductivity, favorable meso-/microporous structure together with nitrogen and phosphorus heteroatom co-doping, all of which are beneficial for the accommodation of ions and charge transport during the CDI process. More importantly, NPC/rGO exhibits a state-of-the-art CDI performance compared to the commercial benchmark and most of the previously reported carbon materials, highlighting the significance of the MOF nanoparticle-driven assembly strategy and graphene–carbon 2D heterostructures for CDI applications. The Royal Society of Chemistry 2021-06-30 /pmc/articles/PMC8336432/ /pubmed/34377418 http://dx.doi.org/10.1039/d1sc00915j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Guo, Jingru
Xu, Xingtao
Hill, Jonathan P.
Wang, Liping
Dang, Jingjing
Kang, Yunqing
Li, Yuliang
Guan, Weisheng
Yamauchi, Yusuke
Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization
title Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization
title_full Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization
title_fullStr Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization
title_full_unstemmed Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization
title_short Graphene–carbon 2D heterostructures with hierarchically-porous P,N-doped layered architecture for capacitive deionization
title_sort graphene–carbon 2d heterostructures with hierarchically-porous p,n-doped layered architecture for capacitive deionization
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8336432/
https://www.ncbi.nlm.nih.gov/pubmed/34377418
http://dx.doi.org/10.1039/d1sc00915j
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