Xiao Ping, Zhu Junjiang, Zhao Dan, Zhao Zhen, Zaera Francisco, Zhu Yujun
Key Laboratory of Functional Inorganic Material Chemistry (Heilongjiang University), Ministry of Education, School of Chemistry and Materials , Heilongjiang University , Harbin 150080 , China.
Institute of Catalysis for Energy and Environment, College of Chemistry and Chemical Engineering , Shenyang Normal University , Shenyang 110034 , China.
ACS Appl Mater Interfaces. 2019 May 1;11(17):15517-15527. doi: 10.1021/acsami.9b00506. Epub 2019 Apr 22.
Catalytic transfer hydrogenation is an attractive route for the synthesis of biomass-derived chemicals. However, development of efficient, low-cost, and stable catalysts for that reaction is still a challenge. Here, we report on the preparation and testing of a non-noble perovskite oxide (LaFeO) catalyst synthesized by an in situ carbon templating method. We show that our catalyst is quite active and selective toward the hydrogenation of unsaturated organics. Compared to an analogous LaFeO catalyst prepared by a more traditional method, using citric acid, the new LaFeO exhibited a more porous structure, a La-enriched surface composition, and abundant oxygen vacancies, all characteristics that improve contact with the reactants. In the case of the conversion of furfural to furfuryl alcohol (FOL) using iso-propanol as hydrogen donor, the new LaFeO showed a furfural conversion of 90% and a selectivity to FOL of 94%, significantly higher than with the reference LaFeO prepared by the traditional sol-gel method (60 and 91%, respectively). Moreover, our new LaFeO catalyst can be recovered after a calcination treatment, with no appreciable changes in its structure or activity, a test that we repeated six times, and can promote the hydrogenation of other carbonyl compounds containing electron-withdrawing groups. A reaction mechanism is proposed in which metal cations are the adsorption sites for iso-propanol and oxygen vacancies are the adsorption sites for furfural, and where the conversion proceeds following an acid-base mechanism. We believe that the novel use of perovskites as catalysts for hydrogenation reactions reported here may be easily extendable to other processes, and that our carbon-templating synthetic approach offers a way to synthesize viable perovskite catalysts with high surface areas for optimized activity.
催化转移氢化是合成生物质衍生化学品的一条有吸引力的途径。然而,开发用于该反应的高效、低成本且稳定的催化剂仍然是一项挑战。在此,我们报道了一种通过原位碳模板法合成的非贵金属钙钛矿氧化物(LaFeO)催化剂的制备与测试。我们表明,我们的催化剂对不饱和有机物的氢化反应具有相当高的活性和选择性。与通过更传统的柠檬酸法制备的类似LaFeO催化剂相比,新型LaFeO呈现出更多孔的结构、富含La的表面组成以及丰富的氧空位,所有这些特性都改善了与反应物的接触。在以异丙醇作为氢供体将糠醛转化为糠醇(FOL)的情况下,新型LaFeO的糠醛转化率为90%,对FOL的选择性为94%,显著高于通过传统溶胶 - 凝胶法制备的参比LaFeO(分别为60%和91%)。此外,我们的新型LaFeO催化剂经过煅烧处理后可以回收,其结构或活性没有明显变化,我们重复进行了六次该测试,并且它可以促进其他含吸电子基团的羰基化合物的氢化反应。我们提出了一种反应机理,其中金属阳离子是异丙醇的吸附位点,氧空位是糠醛的吸附位点,并且转化过程遵循酸碱机理。我们相信,本文报道的钙钛矿作为氢化反应催化剂的新用途可能很容易扩展到其他过程,并且我们的碳模板合成方法提供了一种合成具有高表面积以实现优化活性的可行钙钛矿催化剂的途径。