School of Environmental Science and Engineering, Tianjin Key Laboratory of Biomass/Wastes Utilization, Tianjin University, Tianjin, 300350, P. R. China.
Department of Chemistry & Environmental Science, School of Science, Tibet University, Lhasa, 850000, P. R. China.
ChemSusChem. 2020 Jun 8;13(11):2916-2930. doi: 10.1002/cssc.202000175. Epub 2020 Apr 17.
As one of the most promising biomass-based platform molecules, γ-valerolactone (GVL) can be synthesized from a variety of lignocellulosic feedstocks through different hydrogen supply pathways. Among these transformation routes, the hydrogenation of levulinic acid (LA) to GVL by using formic acid (FA) as the internal hydrogen source is regarded as a critical path for the sustainable development of renewable energy systems. Although a large number of studies on the synthesis of GVL have been reported, the FA/LA catalytic system has not been interpreted as thoroughly as it should be. In this Minireview, core concerns are focused on key issues and their effects in this FA/LA catalytic system. The catalytic mechanism, together with competitive adsorption behavior between FA and LA on heterogeneous catalysts, is presented. The effects of active metal species and catalyst supports on the overall catalytic performance are summarized, and the influences of key condition parameters, including the time, temperature, FA/LA molar ratios, and aqueous solvent, are discussed. In particular, impacts and improvements of coke deposition and metal leaching, which could greatly affect the catalyst stability, are analyzed in detail. Additionally, several feasible suggestions for the enhancement of the catalytic efficiency and stability are also proposed.
作为最有前途的生物质基平台分子之一,γ-戊内酯(GVL)可以通过不同的供氢途径从各种木质纤维素原料中合成。在这些转化途径中,通过甲酸(FA)作为内部氢源将乙酰丙酸(LA)加氢转化为 GVL 被认为是可再生能源系统可持续发展的关键途径。尽管已经报道了大量关于 GVL 合成的研究,但 FA/LA 催化体系并没有得到应有的深入解释。在这篇综述中,重点关注了 FA/LA 催化体系中的关键问题及其影响。提出了催化机理以及 FA 和 LA 在多相催化剂上的竞争吸附行为。总结了活性金属物种和催化剂载体对整体催化性能的影响,并讨论了关键条件参数(包括时间、温度、FA/LA 摩尔比和水溶剂)的影响。特别分析了积碳和金属浸出对催化剂稳定性的影响和改进,这会极大地影响催化剂的稳定性。此外,还提出了提高催化效率和稳定性的几种可行建议。