School of Chemistry and Chemical Engineering, Qufu Normal University, Qufu 273165, People's Republic of China.
J Org Chem. 2022 Nov 4;87(21):14673-14684. doi: 10.1021/acs.joc.2c02002. Epub 2022 Oct 13.
Pd-catalyzed hydrophosphorylation of alkynes with P(O)-H compounds provided atom-economical and oxidant-free access to alkenylphosphoryl compounds. Nevertheless, the applicable P(O)-H substrates were limited to those without a hydroxyl group except HP(O)OH. It is also puzzling that PhP(O)OH could co-catalyze the reaction to improve Markovnikov selectivity. Herein, a computational study was conducted to elucidate the mechanistic origin of the phenomena described above. It was found that switchable mechanisms influenced by the acidity of substrates and co-catalysts operate in hydrophosphorylation. In addition, potential side reactions caused by the protonation of Pd-alkenyl intermediates with P(O)-OH species were revealed. The regeneration of an active Pd(0) catalyst from the resulting Pd(II) complexes is remarkably slower than the hydrophosphonylation, while the downstream reactions, if possible, would lead to phosphorus 2-pyrone. Further analysis indicated that the side reactions could be suppressed by utilizing bulky substrates or ligands or by decreasing the concentration of P(O)-OH species. The presented switchable mechanisms and side reactions shed light on the co-transformations of P(O)-H and P-OH compounds in the Pd-catalyzed hydrophosphorylation of alkynes, clarify the origin of the distinct performances of P(O)-H/OH compounds, and provide theoretical clues for expanding the applicable substrate scope of hydrophosphorylation and synthesizing cyclic alkenylphosphoryl compounds.
钯催化炔烃与 P(O)-H 化合物的加氢膦化反应提供了原子经济性和无氧化剂的方法,用于合成烯基膦酰基化合物。然而,适用的 P(O)-H 底物仅限于不含羟基的化合物,除了 HP(O)OH。同样令人困惑的是,PhP(O)OH 可以共催化反应以提高 Markovnikov 选择性。本文进行了计算研究,以阐明上述现象的机制起源。结果表明,受底物和共催化剂酸度影响的可切换机制在加氢膦化反应中起作用。此外,揭示了由 Pd-烯基中间体与 P(O)-OH 物种的质子化引起的潜在副反应。从生成的 Pd(II)配合物中再生活性 Pd(0)催化剂的速度明显慢于加氢膦化反应,而下游反应(如果可能)则会导致磷 2-吡喃酮。进一步分析表明,通过使用大位阻的底物或配体或降低 P(O)-OH 物种的浓度,可以抑制副反应。所提出的可切换机制和副反应阐明了 Pd 催化炔烃加氢膦化反应中 P(O)-H 和 P-OH 化合物的共转化,阐明了 P(O)-H/OH 化合物不同性能的起源,并为扩展加氢膦化的适用底物范围和合成环状烯基膦酰基化合物提供了理论线索。