Zhou Xuemei, Sterbinsky George E, Wasim Eman, Chen Linxiao, Tait Steven L
Department of Chemistry, Indiana University, 800 E. Kirkwood Ave., Bloomington, Indiana, 47405, USA.
School of Chemical Engineering, Sichuan University No. 24 South Section 1, Yihuan Road, Chengdu, 610065, P. R. China.
ChemSusChem. 2021 Sep 20;14(18):3825-3837. doi: 10.1002/cssc.202100208. Epub 2021 Jun 1.
Ligand-coordinated supported catalysts (LCSCs) are of growing interest for heterogeneous single-atom catalysis. Here, the effect of the choice of organic ligand on the activity and stability of TiO -supported single-atom Pt-ligand catalysts was investigated for ethylene hydrogenation. The activity of these catalysts showed a significant dependence on the choice of ligand and also correlated with coordination number for Pt-ligand and Pt-Cl . Of the three ligands examined in this study, the one with the lowest Pt coordination number, 1,10-phenanthroline-5,6-dione (PDO), showed the lowest reaction temperature and highest reaction rate, likely due to those metal sites being more accessible to reactant adsorption. In-situ X-ray absorption spectroscopy (XAS) experiments showed that the activity also correlated with good heterolytic dissociation of hydrogen, which was supported by OH/OD exchange experiments and was the rate-determining step of the hydrogenation reaction. In these in-situ XAS experiments up to 190 °C, the supported Pt-ligand catalyst showed excellent stability against structural and chemical change. Instead of Pt, the PDO ligand could be coordinated with Ir on TiO to form Ir LCSCs that showed slow activation by loss of Ir-Cl bonds, then excellent stability in the hydrogenation of ethylene. These results provide the chance to engineer ligand-coordinated supported catalysts at the single-atom catalyst level by the choice of ligand and enable new applications at relatively high temperature.
配体配位负载型催化剂(LCSCs)在多相单原子催化领域越来越受到关注。在此,研究了有机配体的选择对TiO负载的单原子Pt-配体催化剂用于乙烯加氢反应的活性和稳定性的影响。这些催化剂的活性对配体的选择有显著依赖性,并且还与Pt-配体和Pt-Cl的配位数相关。在本研究中考察的三种配体中,具有最低Pt配位数的1,10-菲咯啉-5,6-二酮(PDO)表现出最低的反应温度和最高的反应速率,这可能是由于那些金属位点对反应物吸附更易接近。原位X射线吸收光谱(XAS)实验表明,活性还与氢的良好异裂解离相关,这得到了OH/OD交换实验的支持,并且是加氢反应的速率决定步骤。在高达190°C的这些原位XAS实验中,负载型Pt-配体催化剂对结构和化学变化表现出优异的稳定性。除了Pt之外,PDO配体还可以与TiO上的Ir配位形成Ir LCSCs,其通过Ir-Cl键的断裂表现出缓慢的活化,然后在乙烯加氢反应中具有优异的稳定性。这些结果提供了通过配体选择在单原子催化剂水平上设计配体配位负载型催化剂的机会,并实现了在相对高温下的新应用。