Citation: CHEN Jiebo, XIE Weijie, WANG Lu, WANG Yiming, LEI Yufeng, WEI Yali. Synthesis of Ordered Mesoporous Ru-MgZr Composite Oxide Catalysts for Isomerization of Linoleic Acid[J]. Chinese Journal of Applied Chemistry, ;2018, 35(11): 1342-1350. doi: 10.11944/j.issn.1000-0518.2018.11.170412 shu

Synthesis of Ordered Mesoporous Ru-MgZr Composite Oxide Catalysts for Isomerization of Linoleic Acid

  • Corresponding author: CHEN Jiebo, jiebo-chen@fafu.edu.cn
  • Received Date: 15 November 2017
    Revised Date: 29 December 2017
    Accepted Date: 6 February 2018

    Fund Project: Supported by the National Natural Science Foundation of China(No.81673542), the Opening Foundation of National Engineering Research Center for Sugarcane(No.KJG16005E, No.PTJH1500113)the Opening Foundation of National Engineering Research Center for Sugarcane PTJH1500113the National Natural Science Foundation of China 81673542the Opening Foundation of National Engineering Research Center for Sugarcane KJG16005E

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  • The preparation of highly efficient and selective catalyst is important for the isomerization of linoleic acid. Herein, ordered mesoporous Ru-MgO-ZrO2 solid base catalysts were synthesized through the evaporation-induced self-assembly sol-gel method. The effects of the basicity, pore size and specific surface area of the catalyst were investigated. The effect of catalysts surface basicity, Ru doping and its effect on catalysis activity were also investigated. The results show that the Ru-MgO-ZrO2 catalyst with n (Zr):n (Mg)=3:1 has good order and high specific surface area. The strong base sites and lattice Ru of catalyst are the two active sites of catalytic reaction. The Ru-MgO-ZrO2 catalyst with n (Zr):n (Mg)=1:1 catalyst leads to the highest 85% yield of conjugated linoleic acid (CLA) in 4 hour reaction time and the productivity of CLA is 0.099 g (CLA)·L-1 (solvent)·min-1. Furthermore, the products are mainly three kinds of isomers with biological activity. These solid base oxide catalysts with the advantages of high catalytic efficiency, simple preparation and high selectivity toward biological activity of linoleic acid products show application prospect.
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