Yang Yang, Zhu Xiaojuan, Wang Lili, Lang Junyu, Yao Guohua, Qin Tian, Ren Zhouhong, Chen Liwei, Liu Xi, Li Wei, Wan Ying
The Education Ministry Key Laboratory of Resource Chemistry, Joint International Research Laboratory of Resource Chemistry of Ministry of Education, Shanghai Key Laboratory of Rare Earth Functional Materials, and Shanghai Frontiers Science Center of Biomimetic Catalysis, Shanghai Normal University, Shanghai, 200234, China.
School of Physical Science and Technology, Shanghai Tech University, Shanghai, 201210, China.
Nat Commun. 2022 May 18;13(1):2754. doi: 10.1038/s41467-022-30540-z.
Pd catalysts are widely used in alkynol semi-hydrogenation. However, due to the existence of scaling relationships of adsorption energies between the key adsorbed species, the increase in conversion is frequently accompanied by side reactions, thereby reducing the selectivity to alkenols. We report that the simultaneous increase in alkenol selectivity and alkynol conversion is achieved by manipulating interstitial atoms including B, P, C, S and N in Pd catalysts. A negative linear relationship is observed between the activation entropies of 2-methyl-3-butyn-2-ol and 2-methyl-3-buten-2-ol which is highly related to the filling of d-orbital of Pd catalysts by the modification of p-block elements. A catalyst co-modified by B and C atoms has the maximum d charge of Pd that achieves a 17-fold increase in the turn-over frequency values compared to the Lindlar catalysts in the semi-hydrogenation of 2-methyl-3-butyn-2-ol. When the conversion is close to 100%, the selectivity can be as high as 95%.
钯催化剂广泛应用于炔醇半加氢反应。然而,由于关键吸附物种之间存在吸附能的标度关系,转化率的提高常常伴随着副反应,从而降低了对烯醇的选择性。我们报道,通过调控钯催化剂中的间隙原子(包括硼、磷、碳、硫和氮),可以实现烯醇选择性和炔醇转化率的同时提高。观察到2-甲基-3-丁炔-2-醇和2-甲基-3-丁烯-2-醇的活化熵之间存在负线性关系,这与通过p区元素改性使钯催化剂的d轨道填充密切相关。由硼和碳原子共改性的催化剂具有最大的钯d电荷,在2-甲基-3-丁炔-2-醇的半加氢反应中,与林德拉催化剂相比,周转频率值提高了17倍。当转化率接近100%时,选择性可高达95%。