Department of Chemistry, Molecular Sciences Research Hub, Imperial College London, 82 Wood Lane, White City, London W12 0BZ, United Kingdom.
Johnson Matthey Technology Centre, Blounts Court, Sonning Common, Reading RG4 9NH, United Kingdom.
J Am Chem Soc. 2023 Apr 5;145(13):7667-7674. doi: 10.1021/jacs.3c02301. Epub 2023 Mar 27.
The reversible activation of dihydrogen with a molecular zinc anilide complex is reported. The mechanism of this reaction has been probed through stoichiometric experiments and density functional theory (DFT) calculations. The combined evidence suggests that H activation occurs by addition across the Zn-N bond a four-membered transition state in which the Zn and N atoms play a dual role of Lewis acid and Lewis base. The zinc hydride complex that results from H addition has been shown to be remarkably effective for the hydrozincation of C═C bonds at modest temperatures. The scope of hydrozincation includes alkynes, alkenes, and a 1,3-butadiyne. For alkynes, the hydrozincation step is stereospecific leading exclusively to the syn-isomer. Competition experiments show that the hydrozincation of alkynes is faster than the equivalent alkene substrates. These new discoveries have been used to develop a catalytic system for the semi-hydrogenation of alkynes. The catalytic scope includes both aryl- and alkyl-substituted internal alkynes and proceeds with high alkene: alkane, : ratios, and modest functional group tolerance. This work offers a first example of selective hydrogenation catalysis using zinc complexes.
本文报道了一种分子锌酰亚胺配合物可将氢气可逆活化。通过化学计量实验和密度泛函理论(DFT)计算探究了该反应的机理。综合证据表明,H 的活化是通过在 Zn-N 键上加成发生的,其中四元过渡态中 Zn 和 N 原子同时充当路易斯酸和路易斯碱的双重作用。实验结果表明,H 加成生成的锌氢化物复合物在温和条件下对 C═C 键的氢化反应非常有效。氢化锌化的范围包括炔烃、烯烃和 1,3-丁二炔。对于炔烃,氢化锌化步骤具有立体特异性,仅生成顺式异构体。竞争实验表明,炔烃的氢化反应速度快于相应的烯烃底物。这些新发现已被用于开发炔烃半氢化的催化体系。该催化体系包括芳基和烷基取代的内部炔烃,具有高的烯烃:烷烃比值和适度的官能团耐受性。这项工作提供了使用锌配合物进行选择性氢化催化的首例实例。