Liu Shihan, Yang Haobo, Wang Ya-Nan, Zhao Qiaoqiao, Wang Yujie, Bai Ruopeng, Liu Qiang, Lan Yu
School of Chemistry and Chemical Engineering, Chongqing Key Laboratory of Chemical Theory and Mechanism, Chongqing University, Chongqing 401331, China.
Center of Basic Molecular Science (CBMS), Department of Chemistry, Tsinghua University, Beijing 100084, China.
J Am Chem Soc. 2024 May 8. doi: 10.1021/jacs.4c02096.
In this study, we investigated the role of aluminum cations in facilitating hydride transfer during the hydrogenation of imines within the context of Noyori-type metal-ligand cooperative catalysis. We propose a novel model involving aluminum cations directly coordinated with imines to induce activation from the lone pair electron site, a phenomenon termed σ-induced activation. The aluminum metal-hydride amidate complex ("HMn-NAl") exhibits a higher ability of hydride transfer in the hydrogenation of imines compared to its lithium counterpart ("HMn-NLi"). Density functional theory (DFT) calculations uncover that the aluminum cation efficiently polarizes unsaturated bonds through σ-electron-induced activation in the transition state of hydride transfer, thereby enhancing substrate electrophilicity more efficiently. Additionally, upon substrate coordination, aluminum's coordination saturation improves the hydride nucleophilicity of the HMn-NAl complex via the breakage of the Al-H coordination bond.
在本研究中,我们在野依良治型金属-配体协同催化的背景下,研究了铝阳离子在亚胺氢化过程中促进氢化物转移的作用。我们提出了一种新模型,其中铝阳离子直接与亚胺配位,从孤对电子位点诱导活化,这种现象称为σ-诱导活化。与锂类似物(“HMn-NLi”)相比,铝金属氢化物酰胺配合物(“HMn-NAl”)在亚胺氢化中表现出更高的氢化物转移能力。密度泛函理论(DFT)计算发现,铝阳离子在氢化物转移的过渡态中通过σ-电子诱导活化有效地极化不饱和键,从而更有效地提高底物亲电性。此外,在底物配位后,铝的配位饱和通过Al-H配位键的断裂提高了HMn-NAl配合物的氢化物亲核性。