环氧化物
共聚物
催化作用
二氧化碳
化学
材料科学
化学工程
纳米技术
有机化学
聚合物
工程类
作者
Idrees Ahmed Wani,Mohsan Hassan,Gulzar A. Bhat
标识
DOI:10.1002/cctc.202500959
摘要
Abstract The selective synthesis of polycarbonates (PCs) or cyclic carbonates via catalytic conversion of epoxides and carbon dioxide (CO 2 ) is an efficient pathway for producing valuable products from CO 2 . This approach has received significant attention because it offers control over mechanical, thermal, and degradable characteristics of the resulting PCs. However, activating CO 2 as a C1‐feedstock in such reactions is a challenging task owing to the considerable thermodynamic stability of CO 2 . Therefore, the use of catalysts along with precise temperature and pressure control is essential for successful CO 2 copolymerization with cyclic ethers. Since Inoue and co‐workers pioneering discovery of zinc‐based catalysts for these reactions in 1969, substantial advancements have been made for understanding the mechanisms of these catalytic systems. These developments have led to the synthesis of more efficient catalytic systems that can operate under ambient conditions and allow selective epoxides/CO 2 copolymerization. Metal‐based catalytic systems, particularly those utilizing Zn, Co, Cr, and Al have dominated this field, while recent reports highlight the potential of metal‐free organocatalytic systems. Alongside specific catalytic frameworks, many novel molecules have been introduced into the catalytic toolbox. This review will summarize recent developments in exploring novel catalysts for the catalytic conversion of CO 2 and epoxides into aliphatic polycarbonates.
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