Density functional theory investigation of Ru(ii) and Os(ii) asymmetric transfer hydrogenation catalysts†

IF 3.1 3区 化学 Q2 CHEMISTRY, PHYSICAL
Elizabeth M. Bolitho, James P. C. Coverdale, Juliusz A. Wolny, Volker Schünemann and Peter J. Sadler
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Abstract

Transition metal ions have a unique ability to organise and control the steric and electronic effects around a substrate in the active site of a catalyst. We consider half-sandwich Ru(II) (Noyori-type) and Os(II) sulfonyldiamine 16-electron active catalysts [Ru/Os(η6-p-cymene)(TsDPEN-H2)], where TsDPEN is N-tosyl-1,2-diphenylethylenediamine containing S,S or R,R chiral centres, which catalyse the highly efficient asymmetric transfer hydrogenation of aromatic ketones to chiral alcohols using formic acid as a hydride source. We discuss the recognition of the prochiral ketone acetophenone by the catalyst, the protonation of a ligand NH and transfer of hydride from formate to the metal, subsequent transfer of hydride to one enantiotopic face of the ketone, followed by proton transfer from metal-bound NH2, and regeneration of the catalyst. Our DFT calculations illustrate the role of the two chiral carbons on the N,N-chelated sulfonyldiamine ligand, the axial chirality of the π-bonded p-cymene arene, and the chirality of the metal centre. We discuss new features of the mechanism, including how a change in metal chirality of the hydride intermediate dramatically switches p-cymene coordination from η6 to η2. Moreover, the calculations suggest a step-wise mechanism involving substrate docking to the bound amine NH2 followed by hydride transfer prior to protonation of the O-atom of acetophenone and release of the enantio-pure alcohol. This implies that formation and stability of the M–H hydride intermediate is highly dependent on the presence of the protonated amine ligand. The Os(II) catalyst is more stable than the Ru(II) analogue, and these studies illustrate the subtle differences in mechanistic behaviour between these 4d6 and 5d6 second-row and third-row transition metal congeners in group 8 of the periodic table.

Abstract Image

Ru(ii)和Os(ii)不对称转移加氢催化剂的密度泛函理论研究
过渡金属离子具有组织和控制催化剂活性部位底物周围空间和电子效应的独特能力。我们考虑半夹层Ru(II) (noyori型)和Os(II)磺酰基二胺16电子活性催化剂[Ru/Os(η - 6-对花烯)(TsDPEN- h2)],其中TsDPEN是n -甲酰基-1,2-二苯乙二胺,含有S,S或R,R手性中心,以甲酸为氢化物源催化芳香酮的高效不对称转移加氢成手性醇。我们讨论了催化剂对前手性酮苯乙酮的识别,配体NH的质子化和氢化物从甲酸酯转移到金属,随后氢化物转移到酮的一个对映面,接着是金属结合的NH2的质子转移,以及催化剂的再生。我们的DFT计算说明了两个手性碳在N,N螯合磺酰二胺配体上的作用,π键对花香烃芳烃的轴向手性,以及金属中心的手性。我们讨论了这一机制的新特征,包括氢化物中间体金属手性的变化如何显著地将对伞花烃配位从η6转变为η2。此外,计算结果还表明了一个阶阶机制,包括底物对接到结合的氨NH2,然后在苯乙酮的o原子质子化之前进行氢化物转移,然后释放对映体纯醇。这意味着M-H氢化物中间体的形成和稳定性高度依赖于质子化胺配体的存在。Os(II)催化剂比Ru(II)类似物更稳定,这些研究说明了元素周期表中第8族的4d6和5d6第二行和第三行过渡金属同族物在机理行为上的细微差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Faraday Discussions
Faraday Discussions 化学-物理化学
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期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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