Du Shuai, Yang Shuaiqi, Wang Binbo, Li Pengyun, Zhu Jin, Ma Songqi
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi, 214122, P. R. China.
Key Laboratory of Bio-based Polymeric Materials Technology and Application of Zhejiang Province, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201, P. R. China.
Angew Chem Int Ed Engl. 2024 Jul 29;63(31):e202405653. doi: 10.1002/anie.202405653. Epub 2024 Jun 27.
Dithioacetals are heavily used in organic, material and medical chemistries, and exhibit huge potential to synthesize degradable or recyclable polymers. However, the current synthetic approaches of dithioacetals and polydithioacetals are overwhelmingly dependent on external catalysts and organic solvents. Herein, we disclose a catalyst- and solvent-free acetal-thiol click-like reaction for synthesizing dithioacetals and polydithioacetals. High conversion, higher than acid catalytic acetal-thiol reaction, can be achieved. High universality was confirmed by monitoring the reactions of linear and cyclic acetals (including renewable bio-sourced furan-acetal) with aliphatic and aromatic thiols, and the reaction mechanism of monomolecular nucleophilic substitution (S1) and auto-protonation (activation) by thiol was clarified by combining experiments and density functional theory computation. Subsequently, we utilize this reaction to synthesize readily recyclable polydithioacetals. By simple heating and stirring, linear polydithioacetals with of ~110 kDa were synthesized from acetal and dithiol, and depolymerization into macrocyclic dithioacetal and repolymerization into polydithioacetal can be achieved; through reactive extrusion, a semi-interpenetrating polymer dynamic network with excellent mechanical properties and continuous reprocessability was prepared from poly(vinyl butyral) and pentaerythritol tetrakis(3-mercaptopropionate). This green and high-efficient synthesis method for dithioacetals and polydithioacetals is beneficial to the sustainable development of chemistry.
二硫缩醛在有机化学、材料化学和药物化学中有着广泛应用,并且在合成可降解或可回收聚合物方面展现出巨大潜力。然而,目前二硫缩醛和聚二硫缩醛的合成方法在很大程度上依赖于外部催化剂和有机溶剂。在此,我们报道了一种无催化剂和无溶剂的缩醛-硫醇类点击反应来合成二硫缩醛和聚二硫缩醛。该反应能实现高于酸催化缩醛-硫醇反应的高转化率。通过监测线性和环状缩醛(包括可再生的生物源呋喃缩醛)与脂肪族和芳香族硫醇的反应,证实了该反应具有高度通用性,并且结合实验和密度泛函理论计算阐明了硫醇的单分子亲核取代(S1)和自质子化(活化)反应机理。随后,我们利用此反应合成了易于回收的聚二硫缩醛。通过简单加热和搅拌,由缩醛和二硫醇合成了重均分子量约为110 kDa的线性聚二硫缩醛,并且可以实现其解聚为大环二硫缩醛以及再聚合为聚二硫缩醛;通过反应挤出,由聚乙烯醇缩丁醛和季戊四醇四(3-巯基丙酸酯)制备了具有优异机械性能和连续可加工性的半互穿聚合物动态网络。这种绿色高效的二硫缩醛和聚二硫缩醛合成方法有利于化学的可持续发展。