Kwanghak ChoeFengbin ZhengHui WangYi YuanWenshi ZhaoGuangxin XueXueying QiuMyonghak RiXinghua ShiYinglong WangGuodong LiZhiyong Tang
Abstract The semihydrogenation of alkynes into alkenes rather than alkanes is of great importance in the chemical industry. Unfortunately, state‐of‐the‐art heterogeneous catalysts hardly achieve high turnover frequencies (TOFs) simultaneously with almost full conversion, excellent selectivity, and good stability. Here, we used metal–organic frameworks (MOFs) containing Zr metal nodes (“UiO”) with tunable wettability and electron‐withdrawing ability as activity accelerators for the semihydrogenation of alkynes catalyzed by sandwiched palladium nanoparticles (Pd NPs). Impressively, the porous hydrophobic UiO support not only leads to an enrichment of phenylacetylene around the Pd NPs but also renders the Pd surfaces more electron‐deficient, which leads to a remarkable catalysis performance, including an exceptionally high TOF of 13835 h −1 , 100 % phenylacetylene conversion 93.1 % selectivity towards styrene, and no activity decay after successive catalytic cycles. The strategy of using molecularly tailored supports is universal for boosting the selective semihydrogenation of various terminal and internal alkynes.
Kwanghak ChoeFengbin ZhengHui WangYi YuanWenshi ZhaoGuangxin XueXueying QiuMyonghak RiXinghua ShiYinglong WangGuodong LiZhiyong Tang
Jooyoung ChungChanhoi KimHansaem JeongTaekyung YuHuy‐Binh DoJyongsik JangJaichan LeeByeong Moon KimByungkwon Lim
Mingchun GuoQiangqiang MengWenyao ChenZheng MengMing‐Liang GaoQunxiang LiXuezhi DuanHai‐Long Jiang
Mingchun GuoQiangqiang MengWenyao ChenZheng MengMing‐Liang GaoQunxiang LiXuezhi DuanHai‐Long Jiang
Jun-ichi HoriKunihiko MurataToshiki SugaiHisanori ShinoharaRyōji NoyoriNoriyoshi AraiNobuhito KuronoTakeshi Ohkuma