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A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine

The sintering resistance of supported Cu nanoparticle (NP) catalysts is crucial to their practical application in the dehydrogenation of diethanolamine (DEA). In this paper, co-precipitation, hydrothermal synthesis, and sol–gel condensation are used to form a new support material through chemical bo...

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Autores principales: Wang, Yongsheng, Zhao, Zhenzhen, Zhao, Yunlu, Lan, Xiaolin, Xu, Weixiang, Chen, Li, Guo, Dongjie, Duan, Zhengkang
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/PMC9072121/
https://www.ncbi.nlm.nih.gov/pubmed/35530217
http://dx.doi.org/10.1039/c9ra05458h
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author Wang, Yongsheng
Zhao, Zhenzhen
Zhao, Yunlu
Lan, Xiaolin
Xu, Weixiang
Chen, Li
Guo, Dongjie
Duan, Zhengkang
author_facet Wang, Yongsheng
Zhao, Zhenzhen
Zhao, Yunlu
Lan, Xiaolin
Xu, Weixiang
Chen, Li
Guo, Dongjie
Duan, Zhengkang
author_sort Wang, Yongsheng
collection PubMed
description The sintering resistance of supported Cu nanoparticle (NP) catalysts is crucial to their practical application in the dehydrogenation of diethanolamine (DEA). In this paper, co-precipitation, hydrothermal synthesis, and sol–gel condensation are used to form a new support material through chemical bonding between graphene oxide and ZrO(2). The composite carriers prepared by the three methods are mixed with copper nitrate and ground using a ball mill. A series of Cu/ZrO(2)-reduced graphene oxide (RGO) composites were prepared by calcination under nitrogen at 450 °C for 3 h and hydrogen reduction at 250 °C for 4 h. The conversion of DEA to iminodiacetic acid (IDA) reached 96% with the Cu/ZrO(2)-RGO catalyst prepared by hydrothermal synthesis. The conversion rate of DEA is more than 80% following the reuse of the CZG-2 catalyst for twelve cycles. The various physicochemical characterization techniques show that the Cu/ZrO(2)-RGO layered and wrinkled nanostructures can improve catalytic stability and suppress the sintering of the supported Cu NPs during the catalytic dehydrogenation of diethanolamine. A synergistic effect between the RGO and the Cu nanoparticles is observed. The Cu nanoparticles with RGO have a better dispersibility, and a new nano-environment is created, which is the key to improving the efficiency of diethanolamine dehydrogenation. These new Cu/ZrO(2)-RGO catalysts show increased durability compared to commercially produced Cu/ZrO(2) catalysts and show promise for practical applications involving diethanolamine dehydrogenation.
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spelling pubmed-90721212022-05-06 A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine Wang, Yongsheng Zhao, Zhenzhen Zhao, Yunlu Lan, Xiaolin Xu, Weixiang Chen, Li Guo, Dongjie Duan, Zhengkang RSC Adv Chemistry The sintering resistance of supported Cu nanoparticle (NP) catalysts is crucial to their practical application in the dehydrogenation of diethanolamine (DEA). In this paper, co-precipitation, hydrothermal synthesis, and sol–gel condensation are used to form a new support material through chemical bonding between graphene oxide and ZrO(2). The composite carriers prepared by the three methods are mixed with copper nitrate and ground using a ball mill. A series of Cu/ZrO(2)-reduced graphene oxide (RGO) composites were prepared by calcination under nitrogen at 450 °C for 3 h and hydrogen reduction at 250 °C for 4 h. The conversion of DEA to iminodiacetic acid (IDA) reached 96% with the Cu/ZrO(2)-RGO catalyst prepared by hydrothermal synthesis. The conversion rate of DEA is more than 80% following the reuse of the CZG-2 catalyst for twelve cycles. The various physicochemical characterization techniques show that the Cu/ZrO(2)-RGO layered and wrinkled nanostructures can improve catalytic stability and suppress the sintering of the supported Cu NPs during the catalytic dehydrogenation of diethanolamine. A synergistic effect between the RGO and the Cu nanoparticles is observed. The Cu nanoparticles with RGO have a better dispersibility, and a new nano-environment is created, which is the key to improving the efficiency of diethanolamine dehydrogenation. These new Cu/ZrO(2)-RGO catalysts show increased durability compared to commercially produced Cu/ZrO(2) catalysts and show promise for practical applications involving diethanolamine dehydrogenation. The Royal Society of Chemistry 2019-09-25 /pmc/articles/PMC9072121/ /pubmed/35530217 http://dx.doi.org/10.1039/c9ra05458h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Yongsheng
Zhao, Zhenzhen
Zhao, Yunlu
Lan, Xiaolin
Xu, Weixiang
Chen, Li
Guo, Dongjie
Duan, Zhengkang
A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine
title A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine
title_full A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine
title_fullStr A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine
title_full_unstemmed A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine
title_short A ZrO(2)-RGO composite as a support enhanced the performance of a Cu-based catalyst in dehydrogenation of diethanolamine
title_sort zro(2)-rgo composite as a support enhanced the performance of a cu-based catalyst in dehydrogenation of diethanolamine
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072121/
https://www.ncbi.nlm.nih.gov/pubmed/35530217
http://dx.doi.org/10.1039/c9ra05458h
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