Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems

For responding to the rapidly increasing trend of research on biorefinery, a diverse range of furans derived from biomass emerge as versatile platform chemicals for a spectrum of pharmaceutical applications. However, it is a formidable challenge to transform biomass feedstock into valuable furan-bas...

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Main Authors: Chen, Z., Liao, S., Ge, Liya, Amaniampong, P. N., Min, Y., Wang, C., Li, K., Lee, Jong-Min
Other Authors: School of Chemical and Biomedical Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/154472
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1544722021-12-23T05:22:49Z Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems Chen, Z. Liao, S. Ge, Liya Amaniampong, P. N. Min, Y. Wang, C. Li, K. Lee, Jong-Min School of Chemical and Biomedical Engineering Engineering::Chemical engineering Intimate Bifunctionality Biomass Conversion For responding to the rapidly increasing trend of research on biorefinery, a diverse range of furans derived from biomass emerge as versatile platform chemicals for a spectrum of pharmaceutical applications. However, it is a formidable challenge to transform biomass feedstock into valuable furan-based chemicals via complicated cascade reactions. Here, we develop a bifunctional reduced graphene oxide (rGO)-supported catalyst with two controllably intimate active sites (namely Ru species and sulfonic acid groups, respectively) on the graphene sheets. The structural and morphological evolution of the catalyst is characterized by FTIR, Raman, XPS, XRD, SEM, and HR-TEM. This catalyst is employed in a biphasic solvent system for the one-pot conversion of fructose to 2,5-diformyfuran (DFF) which is a high-value pharmaceutical intermediate. We demonstrate that the nanoscale proximity of two active sites and the solvent composition are crucial to the catalytic activity and DFF selectivity in the cascade catalysis. The spatial organization of Ru species and sulfonic acid groups reveals an optimized inter-site distance of 12.5 ± 2.2 nm for the high catalytic activity. A solvent-influenced kinetic model is established and accurately elaborates the regulatory role of toluene (as the co-solvent) on the reaction pathways. More importantly, this bifunctional catalyst can be recycled for 4 times without significant loss of catalytic activity. Taken together, a deep understanding is highlighted which provides clues on the optimization of multifunctional catalysts and the choice of solvent system in the cascade catalysis which is a general unit operation in chemical engineering processes. The authors gratefully acknowledge the financial supports from the Science and Technology Planning Project of Guangdong Province of China (2018A050506079), the Hundred Talent Program of Guangdong University of Technology (220418095), and the Bring-in Innovation and Entrepreneurship Team of Guangdong “Zhujiang Talents Plan” (2016ZT06C412). 2021-12-23T05:22:49Z 2021-12-23T05:22:49Z 2020 Journal Article Chen, Z., Liao, S., Ge, L., Amaniampong, P. N., Min, Y., Wang, C., Li, K. & Lee, J. (2020). Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems. Chemical Engineering Journal, 379, 122284-. https://dx.doi.org/10.1016/j.cej.2019.122284 1385-8947 https://hdl.handle.net/10356/154472 10.1016/j.cej.2019.122284 2-s2.0-85069708206 379 122284 en Chemical Engineering Journal © 2019 Elsevier B.V. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Chemical engineering
Intimate Bifunctionality
Biomass Conversion
spellingShingle Engineering::Chemical engineering
Intimate Bifunctionality
Biomass Conversion
Chen, Z.
Liao, S.
Ge, Liya
Amaniampong, P. N.
Min, Y.
Wang, C.
Li, K.
Lee, Jong-Min
Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
description For responding to the rapidly increasing trend of research on biorefinery, a diverse range of furans derived from biomass emerge as versatile platform chemicals for a spectrum of pharmaceutical applications. However, it is a formidable challenge to transform biomass feedstock into valuable furan-based chemicals via complicated cascade reactions. Here, we develop a bifunctional reduced graphene oxide (rGO)-supported catalyst with two controllably intimate active sites (namely Ru species and sulfonic acid groups, respectively) on the graphene sheets. The structural and morphological evolution of the catalyst is characterized by FTIR, Raman, XPS, XRD, SEM, and HR-TEM. This catalyst is employed in a biphasic solvent system for the one-pot conversion of fructose to 2,5-diformyfuran (DFF) which is a high-value pharmaceutical intermediate. We demonstrate that the nanoscale proximity of two active sites and the solvent composition are crucial to the catalytic activity and DFF selectivity in the cascade catalysis. The spatial organization of Ru species and sulfonic acid groups reveals an optimized inter-site distance of 12.5 ± 2.2 nm for the high catalytic activity. A solvent-influenced kinetic model is established and accurately elaborates the regulatory role of toluene (as the co-solvent) on the reaction pathways. More importantly, this bifunctional catalyst can be recycled for 4 times without significant loss of catalytic activity. Taken together, a deep understanding is highlighted which provides clues on the optimization of multifunctional catalysts and the choice of solvent system in the cascade catalysis which is a general unit operation in chemical engineering processes.
author2 School of Chemical and Biomedical Engineering
author_facet School of Chemical and Biomedical Engineering
Chen, Z.
Liao, S.
Ge, Liya
Amaniampong, P. N.
Min, Y.
Wang, C.
Li, K.
Lee, Jong-Min
format Article
author Chen, Z.
Liao, S.
Ge, Liya
Amaniampong, P. N.
Min, Y.
Wang, C.
Li, K.
Lee, Jong-Min
author_sort Chen, Z.
title Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
title_short Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
title_full Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
title_fullStr Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
title_full_unstemmed Reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
title_sort reduced graphene oxide with controllably intimate bifunctionality for the catalytic transformation of fructose into 2,5-diformylfuran in biphasic solvent systems
publishDate 2021
url https://hdl.handle.net/10356/154472
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