Liao Shengfu, Liu Jianguo, Yan Long, Liu Qiying, Chen Guanghui, Ma Longlong
Biomass Catalytic Conversion Laboratory, Guangzhou Institute of Energy, Chinese Academy of Sciences Guangzhou Guangdong 510640 China
University of Chinese Academy of Sciences Beijing 100049 China.
RSC Adv. 2020 Oct 7;10(61):37014-37022. doi: 10.1039/d0ra06414a.
Anthraquinones are recognized as high efficiency photocatalysts which can perform various redox reactions in aqueous or organic phases. We have experimentally proven that 2-BrAQ can undergo hydrogen transfer with an alpha-aromatic alcohol under light conditions, thereby efficiently oxidizing the aromatic alcohol to the corresponding product. The yield of 1-phenethanol to acetophenone can reach more than 96%. In subsequent catalyst screening experiments, it was found that the electronegativity of the substituent at the 2 position of the anthraquinone ring and the acidity of the solvent affect the photocatalytic activity of anthraquinones. After using various aromatic alcohol substrates, 2-BrAQ showed good conversion and selectivity for most aromatic alcohols, but showed C-C bond cleavage and low selectivity with non-α-position aromatic alcohols. In order to explore the mechanism of the redox reaction of 2-BrAQ in acetonitrile solution, the corresponding free radical reaction pathway was proposed and verified by density functional theory (DFT). Focusing on calculations for 2-BrAQ during the reaction and the first-step hydrogen transfer reaction between the 2-BrAQ triplet molecule and the 1-phenylethanol molecule, we recognized the changes that occurred during the reaction and thus have a deeper understanding of the redox reaction of anthraquinone compounds in organic systems.
蒽醌被认为是高效的光催化剂,可在水相或有机相中进行各种氧化还原反应。我们通过实验证明,2-溴蒽醌(2-BrAQ)在光照条件下可与α-芳族醇发生氢转移,从而将芳族醇有效地氧化为相应产物。1-苯乙醇转化为苯乙酮的产率可达96%以上。在随后的催化剂筛选实验中,发现蒽醌环2位取代基的电负性和溶剂的酸度会影响蒽醌的光催化活性。在使用各种芳族醇底物后,2-BrAQ对大多数芳族醇表现出良好的转化率和选择性,但对非α位芳族醇表现出C-C键断裂和低选择性。为了探索2-BrAQ在乙腈溶液中的氧化还原反应机理,提出了相应的自由基反应途径,并通过密度泛函理论(DFT)进行了验证。聚焦于反应过程中2-BrAQ的计算以及2-BrAQ三线态分子与1-苯乙醇分子之间的第一步氢转移反应,我们认识到反应过程中发生的变化,从而对有机体系中蒽醌化合物的氧化还原反应有了更深入的理解。