Chetty Lloyd C, Kruger Hendrik G, Arvidsson Per I, Maguire Glenn E M, Govender Thavendran, Naicker Tricia
Catalysis and Peptide Research Unit, University of KwaZulu Natal, Durban 4001, South Africa.
Science for Life Laboratory, Drug Discovery & Development Platform & Division of Translational Medicine and Chemical Biology, Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm 171 65, Sweden.
ACS Omega. 2024 Aug 22;9(35):37155-37162. doi: 10.1021/acsomega.4c04383. eCollection 2024 Sep 3.
This study introduces a novel proline-catalyzed oxidation system employing hydrogen peroxide to synthesize quinones from a diverse range of substrates, including hydroquinones, phenols, resorcinols, aldehydes, and polycyclic aromatics. This approach is well-aligned with green chemistry principles, offering a more environmentally benign approach than earlier studies. Notably, this approach uses cost-effective reagents, proline as a readily available organocatalyst, reduced equivalents of HO, metal-free conditions, and notably short reaction times to achieve moderate-to-high yields. This promising approach encourages further exploration of the HO-proline system in oxidation reactions. This study's innovative approach and good results set a strong foundation for future research to expand the scope and efficiency of green oxidation processes.
本研究介绍了一种新型的脯氨酸催化氧化体系,该体系利用过氧化氢从多种底物合成醌类化合物,这些底物包括对苯二酚、苯酚、间苯二酚、醛类和多环芳烃。这种方法符合绿色化学原则,比早期研究提供了一种对环境更友好的方法。值得注意的是,该方法使用具有成本效益的试剂、脯氨酸作为易于获得的有机催化剂、减少当量的HO、无金属条件,并且反应时间显著缩短,以实现中等到高的产率。这种有前景的方法鼓励在氧化反应中进一步探索HO-脯氨酸体系。本研究的创新方法和良好结果为未来扩大绿色氧化过程的范围和效率的研究奠定了坚实的基础。