Department of Chemistry, Istanbul Technical University , 34469 Maslak, Istanbul, Turkey.
Center of Excellence for Advanced Materials Research (CEAMR) and Department of Chemistry, King Abdulaziz University , 21589 Jeddah, Saudi Arabia.
Chem Rev. 2016 Sep 14;116(17):10212-75. doi: 10.1021/acs.chemrev.5b00586. Epub 2016 Jan 8.
Photochemical reactions, particularly those involving photoinduced electron transfer processes, establish a substantial contribution to the modern synthetic chemistry, and the polymer community has been increasingly interested in exploiting and developing novel photochemical strategies. These reactions are efficiently utilized in almost every aspect of macromolecular architecture synthesis, involving initiation, control of the reaction kinetics and molecular structures, functionalization, and decoration, etc. Merging with polymerization techniques, photochemistry has opened up new intriguing and powerful avenues for macromolecular synthesis. Construction of various polymers with incredibly complex structures and specific control over the chain topology, as well as providing the opportunity to manipulate the reaction course through spatiotemporal control, are one of the unique abilities of such photochemical reactions. This review paper provides a comprehensive account of the fundamentals and applications of photoinduced electron transfer reactions in polymer synthesis. Besides traditional photopolymerization methods, namely free radical and cationic polymerizations, step-growth polymerizations involving electron transfer processes are included. In addition, controlled radical polymerization and "Click Chemistry" methods have significantly evolved over the last few decades allowing access to narrow molecular weight distributions, efficient regulation of the molecular weight and the monomer sequence and incredibly complex architectures, and polymer modifications and surface patterning are covered. Potential applications including synthesis of block and graft copolymers, polymer-metal nanocomposites, various hybrid materials and bioconjugates, and sequence defined polymers through photoinduced electron transfer reactions are also investigated in detail.
光化学反应,特别是涉及光诱导电子转移过程的反应,对现代合成化学做出了重要贡献,聚合物领域越来越热衷于开发和利用新型光化学策略。这些反应在高分子结构合成的几乎各个方面都得到了有效利用,包括引发、控制反应动力学和分子结构、功能化和修饰等。光化学与聚合技术相结合,为高分子合成开辟了新的引人入胜和强大的途径。通过光诱导电子转移反应,可以构建具有难以置信的复杂结构和对链拓扑结构的特定控制的各种聚合物,以及通过时空控制来操纵反应过程的机会,这是此类光化学反应的独特能力之一。本文综述了光诱导电子转移反应在聚合物合成中的基本原理和应用。除了传统的光聚合方法,即自由基聚合和阳离子聚合外,还包括涉及电子转移过程的逐步聚合。此外,近几十年来,可控自由基聚合和“点击化学”方法得到了显著发展,使人们能够获得窄分子量分布、对分子量和单体序列进行高效调节,并获得非常复杂的结构,以及聚合物的修饰和表面图案化。本文还详细研究了通过光诱导电子转移反应合成嵌段和接枝共聚物、聚合物-金属纳米复合材料、各种杂化材料和生物缀合物以及序列定义聚合物的潜在应用。