Qin Ruixuan, Wang Pei, Liu Pengxin, Mo Shiguang, Gong Yue, Ren Liting, Xu Chaofa, Liu Kunlong, Gu Lin, Fu Gang, Zheng Nanfeng
State Key Laboratory for Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, and National & Local Joint Engineering Research Center for Preparation Technology of Nanomaterials, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
College of Science, Huazhong Agricultural University, Wuhan 430070, China.
Research (Wash D C). 2020 Jul 17;2020:4172794. doi: 10.34133/2020/4172794. eCollection 2020.
Size effect plays a crucial role in catalytic hydrogenation. The highly dispersed ultrasmall clusters with a limited number of metal atoms are one candidate of the next generation catalysts that bridge the single-atom metal catalysts and metal nanoparticles. However, for the unfavorable electronic property and their interaction with the substrates, they usually exhibit sluggish activity. Taking advantage of the small size, their catalytic property would be mediated by surface binding species. The combination of metal cluster coordination chemistry brings new opportunity. CO poisoning is notorious for Pt group metal catalysts as the strong adsorption of CO would block the active centers. In this work, we will demonstrate that CO could serve as a promoter for the catalytic hydrogenation when ultrasmall Pd clusters are employed. By means of DFT calculations, we show that Pd ( = 2-147) clusters display sluggish activity for hydrogenation due to the too strong binding of hydrogen atom and reaction intermediates thereon, whereas introducing CO would reduce the binding energies of vicinal sites, thus enhancing the hydrogenation reaction. Experimentally, supported PdCO catalysts are fabricated by depositing preestablished [Pd(-CO)Cl] clusters on oxides and demonstrated as an outstanding catalyst for the hydrogenation of styrene. The promoting effect of CO is further verified experimentally by removing and reintroducing a proper amount of CO on the Pd cluster catalysts.
尺寸效应在催化氢化中起着至关重要的作用。具有有限数量金属原子的高度分散的超小簇是连接单原子金属催化剂和金属纳米颗粒的下一代催化剂的候选者之一。然而,由于其不利的电子性质及其与底物的相互作用,它们通常表现出缓慢的活性。利用其小尺寸,它们的催化性能将由表面结合物种介导。金属簇配位化学的结合带来了新的机遇。对于铂族金属催化剂来说,CO中毒是众所周知的,因为CO的强吸附会阻塞活性中心。在这项工作中,我们将证明当使用超小钯簇时,CO可以作为催化氢化的促进剂。通过密度泛函理论计算,我们表明Pd ( = 2 - 147) 簇由于氢原子和反应中间体在其上的结合过强而表现出缓慢的氢化活性,而引入CO会降低相邻位点的结合能,从而增强氢化反应。在实验上,通过将预先制备的[Pd(-CO)Cl]簇沉积在氧化物上制备了负载型PdCO催化剂,并证明其是苯乙烯氢化的优异催化剂。通过在钯簇催化剂上去除和重新引入适量的CO,进一步通过实验验证了CO的促进作用。