Chen Sai, Chang Xin, Sun Guodong, Zhang Tingting, Xu Yiyi, Wang Yang, Pei Chunlei, Gong Jinlong
Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering & Technology, Tianjin University, Tianjin 300072, China.
Chem Soc Rev. 2021 Mar 15;50(5):3315-3354. doi: 10.1039/d0cs00814a.
Propylene is an important building block for enormous petrochemicals including polypropylene, propylene oxide, acrylonitrile and so forth. Propane dehydrogenation (PDH) is an industrial technology for direct propylene production which has received extensive attention in recent years. With the development of dehydrogenation technologies, the efficient adsorption/activation of propane and subsequential desorption of propylene on the surfaces of heterogeneous catalysts remain scientifically challenging. This review describes recent advances in the fundamental understandings of the PDH process in terms of emerging technologies, catalyst development and new chemistry in regulating the catalyst structures and inhibiting the catalyst deactivation. The active sites, reaction pathways and deactivation mechanisms of PDH over metals and metal oxides as well as their dependent factors are also analysed and discussed, which is expected to enable efficient catalyst design for minimizing the reaction barriers and controlling the selectivity towards propylene. The challenges and perspectives of PDH over heterogeneous catalysts are also proposed for further development.
丙烯是包括聚丙烯、环氧丙烷、丙烯腈等在内的大量石化产品的重要基础原料。丙烷脱氢(PDH)是一种近年来受到广泛关注的直接生产丙烯的工业技术。随着脱氢技术的发展,丙烷在多相催化剂表面的高效吸附/活化以及随后丙烯的脱附在科学上仍然具有挑战性。本文综述了在新兴技术、催化剂开发以及调节催化剂结构和抑制催化剂失活方面的新化学等方面,对PDH过程基本认识的最新进展。还分析和讨论了金属和金属氧化物上PDH的活性位点、反应途径和失活机理及其相关因素,有望实现高效催化剂设计,以最小化反应势垒并控制对丙烯的选择性。还提出了多相催化剂上PDH的挑战和展望,以供进一步发展。