Tindall Daniel J, Menche Maximilian, Schelwies Mathias, Paciello Rocco A, Schäfer Ansgar, Comba Peter, Rominger Frank, Hashmi A Stephen K, Schaub Thomas
Catalysis Research Laboratory (CaRLa), Im Neuenheimer Feld 584, D-69120 Heidelberg, Germany.
BASF SE, Quantum Chemistry & Molecular Simulation, Carl-Bosch-Straße 38, D-67056 Ludwigshafen, Germany.
Inorg Chem. 2020 Apr 6;59(7):5099-5115. doi: 10.1021/acs.inorgchem.0c00337. Epub 2020 Mar 20.
The complex Ru-MACHO has been previously shown to undergo uncontrolled degradation subsequent to base-induced dehydrochlorination in the absence of a substrate. In this study, we report that stabilization of the dehydrochlorinated Ru-MACHO with phosphines furnishes complexes whose structures depend on the phosphines employed: while PMe led to the expected octahedral Ru complex, PPh provided access to a trigonal-bipyramidal Ru complex. Because both complexes proved to be active in base-free (de)hydrogenation reactions, thorough quantum-chemical calculations were employed to understand the reaction mechanism. The calculations show that both complexes lead to the same mechanistic scenario after phosphine dissociation and, therefore, only differ energetically in this step. According to the calculations, the typically proposed metal-ligand cooperation mechanism is not the most viable pathway. Instead, a metal-ligand-assisted pathway is preferred. Finally, experiments show that phosphine addition enhances the catalyst's performance in comparison to the PR-free "activated" Ru-MACHO.
先前已表明,在没有底物的情况下,配合物Ru-MACHO在碱诱导的脱氯化氢反应后会发生不受控制的降解。在本研究中,我们报告称,用膦稳定脱氯化氢的Ru-MACHO可得到结构取决于所用膦的配合物:虽然PMe生成了预期的八面体Ru配合物,但PPh得到了三角双锥Ru配合物。由于这两种配合物在无碱(脱)氢化反应中均表现出活性,因此采用了全面的量子化学计算来理解反应机理。计算结果表明,两种配合物在膦解离后导致相同的机理,因此仅在这一步骤中能量上有所不同。根据计算,通常提出的金属-配体协同机理并非最可行的途径。相反,金属-配体辅助途径更受青睐。最后,实验表明,与不含PR的“活化”Ru-MACHO相比,添加膦可提高催化剂的性能。