POLYMAT, University of the Basque Country UPV/EHU Jose Mari Korta Center, Avda Tolosa 72, 20018, Donostia-San Sebastian, Spain.
University of the Balearic Islands UIB, Department of Chemistry, Cra. Valldemossa, Km 7.5, 07122, Palma de Mallorca, Spain.
Angew Chem Int Ed Engl. 2022 Sep 5;61(36):e202203043. doi: 10.1002/anie.202203043. Epub 2022 Aug 10.
Organocatalysis has evolved into an effective complement to metal- or enzyme-based catalysis in polymerization, polymer functionalization, and depolymerization. The ease of removal and greater sustainability of organocatalysts relative to transition-metal-based ones has spurred development in specialty applications, e.g., medical devices, drug delivery, optoelectronics. Despite this, the use of organocatalysis and other organomediated reactions in polymer chemistry is still rapidly developing, and we envisage their rapidly growing application in nascent areas such as controlled radical polymerization, additive manufacturing, and chemical recycling in the coming years. In this Review, we describe ten trending areas where we anticipate paradigm shifts resulting from novel organocatalysts and other transition-metal-free conditions. We highlight opportunities and challenges and detail how new discoveries could lead to previously inaccessible functional materials and a potentially circular plastics economy.
有机催化已发展成为聚合、聚合物功能化和解聚中金属或酶基催化的有效补充。与基于过渡金属的催化剂相比,有机催化剂更容易去除且更具可持续性,这推动了其在特种应用中的发展,例如医疗器械、药物输送、光电。尽管如此,有机催化和其他有机介导反应在聚合物化学中的应用仍在迅速发展,我们预计它们在控制自由基聚合、增材制造和化学回收等新兴领域的应用将在未来几年迅速增长。在这篇综述中,我们描述了预计会因新型有机催化剂和其他无过渡金属条件而发生范式转变的十个热门领域。我们强调了机遇和挑战,并详细说明了新发现如何带来以前无法获得的功能材料和潜在的循环塑料经济。