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Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers

Carbon nitride has become a focus of photocatalytic materials research in recent years, but the low specific surface area, the bad separation efficiency of photocarriers, poor quantum efficiency, terrible photocatalytic activity hinder the development of carbon nitride in the field of photocatalysis...

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Autores principales: Liu, Wenbo, Zhang, Zhendong, Zhang, Deguang, Wang, Runwei, Zhang, Zongtao, Qiu, Shilun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055850/
https://www.ncbi.nlm.nih.gov/pubmed/35520088
http://dx.doi.org/10.1039/d0ra03802d
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author Liu, Wenbo
Zhang, Zhendong
Zhang, Deguang
Wang, Runwei
Zhang, Zongtao
Qiu, Shilun
author_facet Liu, Wenbo
Zhang, Zhendong
Zhang, Deguang
Wang, Runwei
Zhang, Zongtao
Qiu, Shilun
author_sort Liu, Wenbo
collection PubMed
description Carbon nitride has become a focus of photocatalytic materials research in recent years, but the low specific surface area, the bad separation efficiency of photocarriers, poor quantum efficiency, terrible photocatalytic activity hinder the development of carbon nitride in the field of photocatalysis. The preparation of carbon nitride nanosheets is one of the effective methods to improve the photocatalytic efficiency of carbon nitride, but the traditional top-down stripping process is time-consuming, complicated and expensive. Here we report a simple, cheap, non-toxic and environmentally friendly bottom-up method to prepare a curled g-C(3)N(4) nanosheet (NS-C(3)N(4)), which is performed at low temperature and normal pressure. In the aqueous solution, melamine and cyanuric acid are copolymerized to form a copolymer. Glycerol is inserted between the molecular layers of the prepolymer by thermal diffusion. Finally, high-quality and high-yield curled g-C(3)N(4) nanosheets (NS-C(3)N(4)) are obtained by thermal peeling and polycondensation. The NS-C(3)N(4) has an highly efficient photocatalytic hydrogen production of 4061.8 μmol h(−1) g(−1), and the hydrogen evolution activity is 37.5 times that of bulk-C(3)N(4) (B-C(3)N(4)). The specific surface area of NS-C(3)N(4) is 60.962 m(2) g(−1). UV-vis absorption spectra, steady-state and time-resolved photoluminescence, and photoelectrochemical tests were used to study its photocatalytic mechanism.
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spelling pubmed-90558502022-05-04 Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers Liu, Wenbo Zhang, Zhendong Zhang, Deguang Wang, Runwei Zhang, Zongtao Qiu, Shilun RSC Adv Chemistry Carbon nitride has become a focus of photocatalytic materials research in recent years, but the low specific surface area, the bad separation efficiency of photocarriers, poor quantum efficiency, terrible photocatalytic activity hinder the development of carbon nitride in the field of photocatalysis. The preparation of carbon nitride nanosheets is one of the effective methods to improve the photocatalytic efficiency of carbon nitride, but the traditional top-down stripping process is time-consuming, complicated and expensive. Here we report a simple, cheap, non-toxic and environmentally friendly bottom-up method to prepare a curled g-C(3)N(4) nanosheet (NS-C(3)N(4)), which is performed at low temperature and normal pressure. In the aqueous solution, melamine and cyanuric acid are copolymerized to form a copolymer. Glycerol is inserted between the molecular layers of the prepolymer by thermal diffusion. Finally, high-quality and high-yield curled g-C(3)N(4) nanosheets (NS-C(3)N(4)) are obtained by thermal peeling and polycondensation. The NS-C(3)N(4) has an highly efficient photocatalytic hydrogen production of 4061.8 μmol h(−1) g(−1), and the hydrogen evolution activity is 37.5 times that of bulk-C(3)N(4) (B-C(3)N(4)). The specific surface area of NS-C(3)N(4) is 60.962 m(2) g(−1). UV-vis absorption spectra, steady-state and time-resolved photoluminescence, and photoelectrochemical tests were used to study its photocatalytic mechanism. The Royal Society of Chemistry 2020-08-04 /pmc/articles/PMC9055850/ /pubmed/35520088 http://dx.doi.org/10.1039/d0ra03802d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liu, Wenbo
Zhang, Zhendong
Zhang, Deguang
Wang, Runwei
Zhang, Zongtao
Qiu, Shilun
Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
title Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
title_full Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
title_fullStr Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
title_full_unstemmed Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
title_short Synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
title_sort synthesis of narrow-band curled carbon nitride nanosheets with high specific surface area for hydrogen evolution from water splitting by low-temperature aqueous copolymerization to form copolymers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055850/
https://www.ncbi.nlm.nih.gov/pubmed/35520088
http://dx.doi.org/10.1039/d0ra03802d
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