Xue Guangxin, Yin Linlin, Shao Shengxian, Li Guodong
CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, People's Republic of China.
College of Chemistry, Zhengzhou University, Zhengzhou 450001, People's Republic of China.
Nanotechnology. 2021 Nov 26;33(7). doi: 10.1088/1361-6528/ac385f.
Phenol is considered as an important platform molecule for synthesizing value-added chemical intermediates and products. To date, various strategies for phenol transformation have been developed, and among them, selective hydrogenation of phenol toward cyclohexanone (K), cyclohexanol (A) or the mixture KA oil has been attracted great interest because they are both the key raw materials for the synthesis of nylon 6 and 66, as well as many other chemical products, including polyamides. However, until now it is still challengeable to realize the industrilized application of phenol hydrogenation toward KA oils. To better understand the selective hydrogenation of phenol and fabricate the enabled nanocatalysts, it is necessary to summarize the recent progress on selective hydrogenation of phenol with different catalysts. In this review, we first summarize the selective hydrogenation of phenol toward cyclohexanone or cyclohexanol by different nanocatalysts, and simultaneously discuss the relationship among the active components, type of supports and their performances. Then, the possible reaction mechanism of phenol hydrogenation with the typical metal nanocatalysts is summarized. Subsequently, the possible ways for scale-up hydrogenation of phenol are discussed. Finally, the potential challenges and future developments of metal nanocatalysts for the selective hydrogenation of phenol are proposed.
苯酚被认为是合成高附加值化学中间体和产品的重要平台分子。迄今为止,已开发出多种苯酚转化策略,其中,苯酚选择性加氢制备环己酮(K)、环己醇(A)或KA油混合物备受关注,因为它们既是合成尼龙6和尼龙66的关键原料,也是许多其他化学产品(包括聚酰胺)的关键原料。然而,到目前为止,实现苯酚加氢制KA油的工业化应用仍然具有挑战性。为了更好地理解苯酚的选择性加氢并制备高效纳米催化剂,有必要总结不同催化剂在苯酚选择性加氢方面的最新进展。在这篇综述中,我们首先总结了不同纳米催化剂催化苯酚选择性加氢制备环己酮或环己醇的情况,同时讨论了活性组分、载体类型及其性能之间的关系。然后,总结了典型金属纳米催化剂催化苯酚加氢的可能反应机理。随后,讨论了苯酚加氢放大反应的可能途径。最后,提出了金属纳米催化剂在苯酚选择性加氢方面的潜在挑战和未来发展方向。