Bothra Neha, Das Shubhajit, Pati Swapan K
Advanced Quantum Theory: Molecules to Materials Group, School of Advanced Materials (SAMat), Theoretical Science Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Jakkur, Bengaluru, 560064, India.
New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR), Bangalore, 560064, India.
Chemistry. 2021 Nov 25;27(66):16407-16414. doi: 10.1002/chem.202102386. Epub 2021 Nov 5.
Pincer ligated coordination complexes of base metals have shown remarkable catalytic activity for hydrogenation/dehydrogenation of CO . The recently reported MeN[CH CH ( Pr )] Co(I)PNP-pincer complex was shown to exhibit substantially higher catalytic activity in comparison to the corresponding catalyst, HN[CH CH ( Pr )] Co(I)PNP, bearing a secondary nitrogen center on the pincer ligand. Here, we computationally investigate the mechanisms for hydrogenation of CO to formate catalyzed by these two Co-PNP complexes to explain how such a small structural difference could have a sizable impact on their catalytic activity. Plausible hydrogenation routes were examined in details and our findings provide solid support for the experimental observations. Our results reveal that such trends in catalytic activity could be explained from the lower activation barrier for the hydride transfer step upon changing the pincer nitrogen center from secondary to tertiary.
贱金属的钳形配位络合物对CO的加氢/脱氢表现出显著的催化活性。最近报道的MeN[CH₂CH₂(ⁱPr)]₂Co(I)PNP钳形络合物与相应的在钳形配体上带有仲氮中心的催化剂HN[CH₂CH₂(ⁱPr)]₂Co(I)PNP相比,显示出显著更高的催化活性。在此,我们通过计算研究了这两种Co-PNP络合物催化CO加氢生成甲酸盐的机理,以解释如此小的结构差异如何对其催化活性产生相当大的影响。我们详细研究了合理的加氢途径,我们的研究结果为实验观察提供了有力支持。我们的结果表明,将钳形氮中心从仲氮变为叔氮后,氢化物转移步骤的活化能垒降低,可以解释这种催化活性趋势。