Department of Chemistry, Chungbuk National University, Cheongju 28644, Korea.
Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Korea.
Inorg Chem. 2020 Dec 7;59(23):17573-17582. doi: 10.1021/acs.inorgchem.0c02809. Epub 2020 Nov 20.
A functionalized metal-organic framework (MOF) catalyst applied to the sequential one-pot oxidation of alcohols to carboxylic acids controls the presence of a heterogeneous catalyst. The conversion of alcohols to aldehydes was acquired through aerobic oxidation using a well-known amino-oxy radical-functionalized MOF. In the same flask, a simple filtration of the radical MOF with mild heating of the solution completely altered the reaction media, providing radical scavenger-free conditions suitable for the autoxidation of the aldehydes formed in the first step to carboxylic acids. The mutually exclusive radical-catalyzed aerobic oxidation (the first step with MOF) and radical-inhibited autoxidation (the second step without MOF) are sequentially achieved in a one-pot manner. Overall, we demonstrate a powerful and efficient method for the sequential oxidation of alcohols to carboxylic acids by employing a readily functionalizable heterogeneous MOF. In addition, our MOF in-and-out method can be utilized in an environmentally friendly way for the oxidation of alcohols to carboxylic acids of industrial and economic value with broad functional group tolerance, including 2,5-furandicarboxylic acid and 1,4-benzenedicarboxylic acid, with good yield and reusability. Furthermore, MOF-TEMPO, as an antioxidative stabilizer, prevents the undesired oxidation of aldehydes, and the perfect "recoverability" of such a reactive MOF requires a re-evaluation of the advantages of MOFs from heterogeneity in catalytic and related applications.
一种功能化的金属有机骨架(MOF)催化剂应用于醇的一锅串联氧化反应,控制了多相催化剂的存在。醇到醛的转化是通过使用众所周知的氨氧基自由基功能化 MOF 进行有氧氧化获得的。在同一个烧瓶中,通过简单过滤自由基 MOF 并对溶液进行温和加热,可以完全改变反应介质,提供无自由基清除剂的条件,适合形成的醛在第一步中自氧化为羧酸。自由基催化的有氧氧化(第一步使用 MOF)和自由基抑制的自氧化(第二步不使用 MOF)以一锅法的方式顺序进行。总体而言,我们通过使用易于功能化的多相 MOF 展示了一种高效、强大的方法,用于醇到羧酸的顺序氧化。此外,我们的 MOF 进-出方法可以以环保的方式用于醇到羧酸的氧化,具有广泛的官能团耐受性,包括 2,5-呋喃二甲酸和 1,4-苯二甲酸,具有良好的产率和可重复使用性。此外,MOF-TEMPO 作为抗氧化稳定剂可以防止醛的不必要氧化,这种反应性 MOF 的完美“可回收性”需要重新评估 MOF 在催化和相关应用中的异质性的优势。