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Sterically Regulated α-Oxygenation of α-Bromocarbonyl Compounds Promoted Using 2-Aryl-1,3-dimethylbenzimidazolines and Air

机译:用2-芳基-1,3-二甲基苯并咪唑啉和空气促进的α-溴羰基化合物的立体调控α-氧合反应

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A debrominative oxygenation protocol has been developed for the conversion of α-bromo-α,α-dialkyl-substituted carbonyl compounds to their corresponding α-hydroxy analogues. For example, stirring a solution of α-bromoisobutyrophenone and 2-aryl-1,3-dimethylbenzimidazoline (BIH-Ar) at room temperature under an air atmosphere leads to the efficient formation of α-hydroperoxyisobutyrophenone, which can be converted to α-hydroxyisobutyrophenone using Me_(2)S reduction. In contrast, reaction of α-bromoacetophenone under the same conditions produces the α-hydrogenated product acetophenone. α-Keto-alkyl and benzimidazolyl radicals (BI~(?)-Ar), generated via dissociative electron transfer from BIH-Ar to α-bromoketone substrates, serve as key intermediates in the oxidation and reduction processes. The dramatic switch from hydrogenation to oxygenation is attributed to a steric effect of α-alkyl substituents, which causes hydrogen atom abstraction from sterically crowded BIH-Ar to α-keto-alkyl radicals to be slow and enable preferential reaction with molecular oxygen. Generation of the α-keto-alkyl radical and BI~(?)-Ar intermediates in these process and their sterically governed hydrogen atom transfer reactions are supported by results arising from DFT calculations. Moreover, an electron spin resonance study showed that visible light irradiation of phenyl benzimidazoline (BIH-Ph) in the presence of molecular oxygen produces the benzimidazolyl radical (BI~(?)-Ph). The addition of thiophenol into the reaction of α-bromoisobutyrophenone and BIH-Ph predominantly produced α-phenylthiolated isobutyrophenone even if a high concentration of molecular oxygen exists. Furthermore, the developed protocol was applied to other α-bromo-α,α-dialkylated carbonyl compounds.
机译:已经开发了脱溴化氧合方案,用于将α-溴-α,α-二烷基取代的羰基化合物转化为其相应的α-羟基类似物。例如,在室温下在空气气氛下搅拌α-溴异丁苯酮和2-芳基-1,3-二甲基苯并咪唑啉(BIH-Ar)的溶液可有效形成α-氢过氧异丁苯酮,可将其转化为α-羟基异丁苯酮使用Me_(2)S还原。相反,在相同条件下α-溴苯乙酮的反应产生α-氢化产物苯乙酮。通过从BIH-Ar向α-溴代酮底物的离解电子转移而生成的α-酮烷基和苯并咪唑基(BI〜(α)-Ar)是氧化和还原过程中的关键中间体。从氢化到氧合的急剧转变归因于α-烷基取代基的空间效应,这会导致从空间拥挤的BIH-Ar到α-酮烷基的氢原子提取缓慢,并能与分子氧优先反应。 DFT计算得出的结果支持了这些过程中α-酮烷基和BI〜(α)-Ar中间体的生成及其空间控制的氢原子转移反应。此外,电子自旋共振研究表明,在分子氧存在下,苯基苯并咪唑啉(BIH-Ph)的可见光照射会产生苯并咪唑基(BI〜(α)-Ph)。即使存在高浓度的分子氧,将硫酚添加到α-溴代异丁酮与BIH-Ph的反应中也主要产生了α-苯硫基化异丁酮。此外,将开发的方案应用于其他α-溴-α,α-二烷基羰基化合物。

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