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FUEL 卷:276
Tuning amphiphilic properties of Ni/Carbon nanotubes functionalized catalysts and their effect as emulsion stabilizer for biomass-derived furfural upgrading
Article
Herrera, C.1,2  Barrientos, L.1,2,3  Rosenkranz, A.4  Sepulveda, C.2,5  Garcia-Fierro, J. L.6  Laguna-Bercero, M. A.7  Escalona, N.1,2,3,8,9 
[1] Pontificia Univ Catolica Chile, Fac Quim & Farm, Santiago, Chile
[2] Millenium Nuclei Catalyt Proc Sustainable Chem CS, Santiago, Chile
[3] Pontificia Univ Catolica Chile, Ctr Invest Nanotecnol & Mat CIEN UC, Santiago, Chile
[4] Univ Chile, Fac Ciencias Fis & Matemat, Dept Ingn Quim Biotecnol & Mat, Santiago, Chile
[5] Univ Concepcion, Fac Ciencias Quim, Casilla 160C, Concepcion, Chile
[6] CSIC, Inst Catalisis & Petroleoquim, Madrid, Spain
[7] Univ Zaragoza, CSIC, ICMA, Maria de Luna 3, Zaragoza 50018, Spain
[8] Pontificia Univ Catolica Chile, Dept Ingn Quim & Bioproc, Escuela Ingn, Ave Vicuna Mackenna 4860, Santiago, Chile
[9] Univ Concepcion, Unidad Desarrollo Tecnol, Coronel, Chile
关键词: Emulsion;    Furfural;    Hydrogenation;    Cyclopentanone;    Biomass;    Carbon nanotubes;   
DOI  :  10.1016/j.fuel.2020.118032
来源: Elsevier
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【 摘 要 】

Three amphiphilic carbon nanotube-supported Ni catalysts have been prepared and tested regarding their emulsifying properties for the hydrogenation of furfural. The solid catalysts and emulsions were systematically characterized by different high-resolution techniques. The catalytic hydrogenation of furfural was evaluated in a mixture of two immiscible solvents under mild conditions. The wettability of the catalysts was tuned by adjusting the severity of the acid treatments during the catalyst's synthesis. It was found that the catalysts wettability played a crucial role in enhancing the catalytic activity. The lowest furfural conversion observed over Ni/CNTox(2) and Ni/CNTp were attributed to the missing possibility to form stable emulsion droplets due to their either extreme hydrophilic or hydrophobic character, respectively. In contrast, the highest catalytic activity verified for Ni/CNTox(1) catalyst was traced back to an improved dispersion of the nickel nanoparticles as well as the possible formation of stable emulsion droplets due to its amphiphilic character. All catalysts were selective towards cyclopentanone. However, the highest yield of cyclopentanone was found over the Ni/CNTox(1) catalyst, which migrated towards the organic phase after its formation. This result highlights the simultaneous reaction and separation of key reaction products in emulsion, which greatly simplifies the isolation stages of target products.

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