Ru nanoparticles supported graphene oxide catalyst for hydrogenation of bio-based levulinic acid to cyclic ethers

被引:41
作者
Upare, Pravin P. [1 ]
Lee, Maeum [1 ]
Lee, Su-Kyung [1 ]
Yoon, Ji Woong [1 ]
Bae, Jongyoon [1 ]
Hwang, Dong Won [1 ,3 ]
Lee, U-Hwang [1 ,3 ]
Chang, Jong-San [1 ,2 ]
Hwang, Young Kyu [1 ,3 ]
机构
[1] Korea Res Inst Chem Technol, Catalysis Ctr Mol Engn, 141 Gajeong Ro, Yuesong 305600, Daejeon, South Korea
[2] Sungkyunkwan Univ, Dept Chem, Suwon 440476, South Korea
[3] Univ Sci & Technol, Dept Green Chem, 217 Gajeong Ro, Yuseong 305350, Daejeon, South Korea
关键词
Ru/graphene oxide; Levulinic acid; GVL; Hydrogenation; GAMMA-VALEROLACTONE; RAMAN-SPECTROSCOPY; CARBON NANOTUBES; RUTHENIUM; OXIDATION; HYDROLYSIS; CONVERSION; CHEMISTRY; CELLULOSE; LACTONES;
D O I
10.1016/j.cattod.2015.09.042
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Ruthenium nanoparticles supported on graphene oxide (GO) catalysts have been evaluated for bio-based levulinic acid (LA) hydrogenation to produce vapor-phase cyclic ethers in a fixed-bed reactor. It was found that using the GO supported Ru nanoparticles (Ru/GO) produced additional hydrogenation products cyclic ethers (54%) and gamma-valerolactone (GVL; 41%), while Ru on carbon (Ru/C) catalysts gave only GVL with 100% LA conversion. To improve the yield of cyclic ethers, an additional two-step hydrogenation of LA via GVL was successfully carried out. This provided GVL as a second feedstock from which the Ru/GO catalyst could produce cyclic ethers such as methyltetrahydrofuran (MTHF) and tetrahydrofuran (THF). Ru on GO catalysts showed a 92% selectivity of predominantly cyclic ethers, including a 77% selectivity of MTHF through two steps process. Such a remarkable enhancement in activity and selectivity of LA hydrogenation over Ru/GO can be attributed to the well-dispersion of Ru nanoparticles, as well as favorable interaction with GO in the presence of oxy-functional groups of GO. In order to evaluate the active sites on the catalyst, they were characterized using different characterization techniques such as Raman, XRD, X-ray photoelectron spectroscopy (XPS), temperature-programmed reduction (TPR), temperature-programmed desorption of NH3 (TPD), electron microscopy (TEM and SEM) and H-2-chemisorption and N-2 adsorption. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:174 / 183
页数:10
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