Liu Jianguo, Wang Nan, Liu Jianan, Li Ming, Xu Ying, Wang Chenguang, Wang Yanzhi, Zheng Haoquan, Ma Longlong
Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou 510640, China.
Key Laboratory of Renewable Energy, Chinese Academy of Sciences, Guangzhou 510640, China.
ACS Appl Mater Interfaces. 2020 Nov 18;12(46):51428-51436. doi: 10.1021/acsami.0c14486. Epub 2020 Nov 9.
Highly selective catalytic hydrogenation of alkynes to alkenes is a highly important reaction owing to its industrial and commercial application. Specifically, semihydrogenation of terminal alkynes has been more challenging than internal alkenes even using Lindlar catalysts. Also, the high reduction degree state metal-supported catalysts like Pd/C, Pt/C, and Ru/C have been well-known to be used widely in hydrogenation due to their super activity. However, charcoal can absorb a large amount of water; Pd/C with 50% water is convenient on a large-scale synthesis. Charcoal generally bears oxygen groups on its surface, which are responsible for low selectivity and undesired products. Even typically, only 10-60% of the Pd metal atoms are exposed, they still suffer from poor stability in acids owing to leaching. Herein, we intend to design active and stable metal catalysts with features as the following to avoid leaching: having strong interaction with the support and coordinatively unsaturated metal sites or low valence state metals physically isolated from the acid environment. Herein, a highly efficient semihydrogenation of terminal alkynes to produce alkenes has been realized using a heterogeneous Pd(II)/POP-GIEC catalyst, imine-linked, crystalline, and porous organic polymer supporter modified by coordination of Pd(OAc) to its walls under mild conditions. Surprisingly, for the first time, modified POP-supported low reduction degree Pd catalysts were synthesized efficiently, and they were successfully used in semihydrogenation of terminal alkynes. The substrate scope was studied and included both unfunctionalized as well as functionalized substituents on the para, ortho, and meta position of aromatic alkynes. The substrate having a substituent with the functionality of fluoro protected at the meta position was semihydrogenated with a high alkyne conversion of 100% and olefin selectivity (up to 99%).
由于其在工业和商业上的应用,炔烃高度选择性催化加氢制烯烃是一个非常重要的反应。具体而言,即使使用林德拉催化剂,末端炔烃的半加氢反应也比内烯烃更具挑战性。此外,高还原度态的金属负载催化剂如Pd/C、Pt/C和Ru/C因其超高活性而在氢化反应中被广泛使用。然而,活性炭会吸收大量水分;含50%水的Pd/C在大规模合成中很方便。活性炭表面通常带有氧基团,这导致选择性低和产生不需要的产物。通常,即使只有10 - 60%的钯金属原子暴露,它们在酸性条件下仍因浸出而稳定性较差。在此,我们打算设计具有以下特性的活性和稳定金属催化剂以避免浸出:与载体有强相互作用以及配位不饱和金属位点或与酸性环境物理隔离的低价态金属。在此,使用非均相Pd(II)/POP - GIEC催化剂实现了末端炔烃高效半加氢制烯烃,该催化剂是通过Pd(OAc)配位修饰其壁的亚胺连接的结晶多孔有机聚合物载体。令人惊讶的是,首次高效合成了改性POP负载的低还原度Pd催化剂,并成功用于末端炔烃的半加氢反应。研究了底物范围,包括芳基炔烃对位、邻位和间位上的未官能化以及官能化取代基。在间位具有氟保护官能团取代基的底物半加氢反应中,炔烃转化率高达100%,烯烃选择性高达99%。