L.V. Pisarzhevskii Institute of Physical Chemistry of the National Academy of Sciences of Ukraine, Prosp. Nauky 31, 03028 Kyiv, Ukraine.
Department of Analytical Chemistry, Faculty of Science, Charles University, Albertov 6, 12800 Prague, Czech Republic.
Molecules. 2023 Jan 11;28(2):747. doi: 10.3390/molecules28020747.
In this research, the oxidation of a series of benzoins, R-C(=O)-CH(OH)-R, where R = phenyl, 4-methoxyphenyl, 4-bromophenyl, and 2-naphthyl, by hydrogen peroxide in the presence of nanostructured HKUST-1 (suspension in acetonitrile/water mixture) was studied. The respective benzoic acids were the only products of the reactions. The initial average reaction rates were experimentally determined at different concentrations of benzoin, HO and an effective concentration of HKUST-1. The sorption of the isotherms of benzoin, dimethoxybenzoin and benzoic acid on HKUST-1, as well as their sorption kinetic curves, were measured. The increase in HO concentration expectedly led to an acceleration of the reaction. The dependencies of the benzoin oxidation rates on the concentrations of both benzoin and HKUST-1 passed through the maxima. This finding could be explained by a counterplay between the increasing reaction rate and increasing benzoin sorption on the catalyst with the increase in the concentration. The electronic effect of the substituent in benzoin had a significant influence on the reaction rate, while no relation between the size of the substrate molecule and the rate of its oxidation was found. It was confirmed by DFT modeling that the reaction could pass through the Baeyer-Villiger mechanism, involving an attack by the HOO anion on the C atom of the activated C=O group.
在这项研究中,研究了一系列苯偶姻,R-C(=O)-CH(OH)-R,其中 R = 苯基、4-甲氧基苯基、4-溴苯基和 2-萘基,在纳米结构 HKUST-1(悬浮在乙腈/水混合物中)存在下用过氧化氢氧化。反应的唯一产物是相应的苯甲酸。在不同浓度的苯偶姻、HO 和有效浓度的 HKUST-1 下,实验测定了初始平均反应速率。测量了苯偶姻、二甲氧基苯偶姻和苯甲酸在 HKUST-1 上的吸附等温线及其吸附动力学曲线。HO 浓度的增加预期会加速反应。苯偶姻氧化速率与苯偶姻和 HKUST-1 浓度的依赖性均通过最大值。这一发现可以通过随着浓度的增加,反应速率的增加和苯偶姻在催化剂上的吸附增加之间的相互作用来解释。苯偶姻中取代基的电子效应对反应速率有显著影响,而未发现底物分子大小与氧化速率之间存在关系。通过 DFT 建模证实,该反应可以通过 Baeyer-Villiger 机制进行,涉及 HOO 阴离子对活化的 C=O 基团的 C 原子的攻击。