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Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol

Nb(2)O(5) nanowires with high specific surface area and crystallinity were prepared by using ammonium oxalate and an acetic acid solvent system. The nanomaterial was applied in ethanolysis of furfuryl alcohol (FA), and the yield of the product, 2-(ethoxymethyl)furan (FEE), achieved was up to 79.6%....

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Autores principales: Zhang, Zhenwei, Wang, Peng, Wu, Zeying, Yue, Chuanjun, Wei, Xuejiao, Zheng, Jiwei, Xiang, Mei, Liu, Baoliang
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/PMC9049509/
https://www.ncbi.nlm.nih.gov/pubmed/35497408
http://dx.doi.org/10.1039/d0ra00085j
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author Zhang, Zhenwei
Wang, Peng
Wu, Zeying
Yue, Chuanjun
Wei, Xuejiao
Zheng, Jiwei
Xiang, Mei
Liu, Baoliang
author_facet Zhang, Zhenwei
Wang, Peng
Wu, Zeying
Yue, Chuanjun
Wei, Xuejiao
Zheng, Jiwei
Xiang, Mei
Liu, Baoliang
author_sort Zhang, Zhenwei
collection PubMed
description Nb(2)O(5) nanowires with high specific surface area and crystallinity were prepared by using ammonium oxalate and an acetic acid solvent system. The nanomaterial was applied in ethanolysis of furfuryl alcohol (FA), and the yield of the product, 2-(ethoxymethyl)furan (FEE), achieved was up to 79.6%. Compared to mesoporous Nb(2)O(5) materials and other porous materials, the residence time of FEE on the surface of the catalyst is shorter, and the yield of ethyl levulinate (EL) is lower. Furthermore, a high temperature calcination treatment can change the acid sites and acidity type distribution on the nanowire surface. By XRD, NH(3)-TPD, IR, and TG-DTA determination methods, it was found that the weak and medium-strong acid sites on the surface of Nb(2)O(5) nanowires were reduced after a 300 °C treatment, and the amount of strong acid was relatively higher. According to the catalytic performance test data and acidity determination, it was concluded that more weak acid and medium-strong acid sites improve the conversion of furfuryl alcohol to FEE, and the strong acid sites promote further conversion of FEE to EL.
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spelling pubmed-90495092022-04-29 Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol Zhang, Zhenwei Wang, Peng Wu, Zeying Yue, Chuanjun Wei, Xuejiao Zheng, Jiwei Xiang, Mei Liu, Baoliang RSC Adv Chemistry Nb(2)O(5) nanowires with high specific surface area and crystallinity were prepared by using ammonium oxalate and an acetic acid solvent system. The nanomaterial was applied in ethanolysis of furfuryl alcohol (FA), and the yield of the product, 2-(ethoxymethyl)furan (FEE), achieved was up to 79.6%. Compared to mesoporous Nb(2)O(5) materials and other porous materials, the residence time of FEE on the surface of the catalyst is shorter, and the yield of ethyl levulinate (EL) is lower. Furthermore, a high temperature calcination treatment can change the acid sites and acidity type distribution on the nanowire surface. By XRD, NH(3)-TPD, IR, and TG-DTA determination methods, it was found that the weak and medium-strong acid sites on the surface of Nb(2)O(5) nanowires were reduced after a 300 °C treatment, and the amount of strong acid was relatively higher. According to the catalytic performance test data and acidity determination, it was concluded that more weak acid and medium-strong acid sites improve the conversion of furfuryl alcohol to FEE, and the strong acid sites promote further conversion of FEE to EL. The Royal Society of Chemistry 2020-02-04 /pmc/articles/PMC9049509/ /pubmed/35497408 http://dx.doi.org/10.1039/d0ra00085j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Zhenwei
Wang, Peng
Wu, Zeying
Yue, Chuanjun
Wei, Xuejiao
Zheng, Jiwei
Xiang, Mei
Liu, Baoliang
Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
title Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
title_full Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
title_fullStr Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
title_full_unstemmed Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
title_short Efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
title_sort efficient synthesis of niobium pentoxide nanowires and application in ethanolysis of furfuryl alcohol
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9049509/
https://www.ncbi.nlm.nih.gov/pubmed/35497408
http://dx.doi.org/10.1039/d0ra00085j
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