4.7 Article

Fabrication of biobased heterogeneous solid Bronsted acid catalysts and their application on the synthesis of liquid biofuel 5-ethoxymethylfurfural from fructose

期刊

GREEN ENERGY & ENVIRONMENT
卷 3, 期 4, 页码 384-391

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.gee.2018.07.003

关键词

Hydrothermal carbonization; Annealing; Sulfonation; 5-Ethoxymethylfurfural; Fructose

资金

  1. National Natural Science Foundation of China [51568049, 21665018, 51468043, 21366024]
  2. Natural Science Foundation of Jiangxi Province, China [20161BAB206118, 20171ACB21035]
  3. Distinguished Youth Science Fund of Jiangxi Province, China [20162BCB23043]
  4. Natural Science Foundation of Jiangxi Provincial Department of Education, China [GJJ14515]

向作者/读者索取更多资源

A series of biobased heterogeneous solid Bronsted acid catalysts with perfect spherical microstructures are successfully fabricated directly from waste Camellia oleifera shells by a simple hydrothermal carbonization-annealing-sulfonation process. 350 degrees C low temperature annealing process helps to increase the activity of the catalyst due to the simultaneous maintenance of the spherical microstructure and aromatic carbon framework. As a renewable catalyst with low cost, the as-prepared materials are successfully applied on the synthesis of green renewable liquid biofuel 5-ethoxymethylfurfural (EMF) directly from fructose. In the catalytic test, the influences of reaction time and temperature, fructose concentration, and adding amount of the catalyst on the yield of EMF are investigated systematically. As a result, the optimal reaction temperature is 100 degrees C, the EMF yield monotonically increases with prolonging the reaction time from 3 to 24 h, the optimal fructose concentration is 0.5 mmol, and the EMF yield gradually increases with increasing the adding amount of the catalyst from 50 to 150 mg. In addition, the asprepared catalysts exhibit considerably high stability in the current EMF synthesis system, and they can maintain a similar level of reactivity after four catalytic cycles. (C) 2018, Institute of Process Engineering, Chinese Academy of Sciences. Publishing services by Elsevier B.V.

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