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Research Article | Open Access

MgO/Carbon nanocomposites synthesized in molten salts for catalytic isomerization of glucose to fructose in aqueous media

Yuchao Shaoa,b,dDong-Yang Zhaoa,eWenjing LudYuyang LongfWeicheng Zhenga,gJun Zhaob,c( )Zhong-Ting Hua,e( )
College of Environment, Zhejiang University of Technology (ZJUT), Hangzhou, 310014, China
HKBU Institute of Research and Continuing Education, Shenzhen, 518057, China
Institute of Bioresource and Agriculture, Department of Biology, Hong Kong Baptist University, Hong Kong SAR, China
School of Environment, Tsinghua University, Beijing, 100084, China
Industrial Catalysts Institute of ZJUT, Hangzhou, 310014, China
Zhejiang Provincial Key Laboratory of Solid Waste Treatment and Recycling, Instrumental Analysis Center, School of Environmental Science and Engineering, Zhejiang Gongshang University, Hangzhou, 310012, China
Hangzhou Research Institute of China Coal Technology & Engineering Group, Hangzhou, 311201, China
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HIGHLIGHTS

● A novel Mg-supported carbonaceous catalyst was synthesized by molten salt method.

● The optimal fructose yield of 34.58% and fructose selectivity of 81.17% were achieved.

● The recycling tests presented the good recyclability of Mg(100mg)/Carbon.

● The possible mechanism of glucose isomerization by Mg(100mg)/Carbon was indicated.

Abstract

Isomerization of glucose into fructose has always been an important step in the biorefining process. This study synthesized a novel Mg-decorated carbonaceous catalyst by molten salt method for the application of glucose isomerization. The morphology of carbon microspheres was formed with high specific surface area and pore volume. The effects of Mg loading, catalyst dosage, reaction temperature, and reaction time were investigated and optimized. The highest fructose yield of 34.58% and fructose selectivity of 81.17% were achieved by the catalyst named Mg(100mg)/Carbon at hydrothermal temperature of 100 ℃ with reaction time of 1.5–2 h, showing the superiority of the catalyst. The results of recycling tests indicated Mg(100mg)/Carbon has good recyclability and can restore its activity after a simple regeneration. And the possible mechanism of glucose isomerization by Mg(100mg)/Carbon was indicated. This study provided a new method for overcoming the difficulty of high energy barrier required for glucose isomerization in the biorefining process.

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References

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Green Chemical Engineering
Pages 359-366

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Cite this article:
Shao Y, Zhao D-Y, Lu W, et al. MgO/Carbon nanocomposites synthesized in molten salts for catalytic isomerization of glucose to fructose in aqueous media. Green Chemical Engineering, 2022, 3(4): 359-366. https://doi.org/10.1016/j.gce.2021.12.008

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Received: 01 July 2021
Revised: 22 December 2021
Accepted: 22 December 2021
Published: 26 December 2021
© 2021 Institute of Process Engineering, Chinese Academy of Sciences.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).