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在层状锌-钴双金属氰化物催化剂上通过一氧化碳与1,2-环氧丁烷的共聚反应高效合成聚碳酸酯醚多元醇

Efficient synthesis of polycarbonate ether polyol copolymerization of CO and 1,2-butylene oxide over a layered Zn-Co double metal cyanide catalyst.

作者信息

Liu Chen, Cao Yan, Zeng Xianqiang, Zheng Zheng, Han Ziqiang, He Peng, Wang Liguo

机构信息

CAS Key Laboratory of Green Process and Engineering, National Engineering Research Center of Green Recycling for Strategic Metal Resources, Institute of Process Engineering, Chinese Academy of Sciences Beijing 100190 China

School of Chemistry and Chemical Engineering, University of Jinan Jinan 250000 China.

出版信息

RSC Adv. 2024 Oct 29;14(46):34372-34380. doi: 10.1039/d4ra06913g. eCollection 2024 Oct 23.

Abstract

Polycarbonate ether polyol synthesized by the copolymerization of carbon dioxide (CO) and epoxides is a promising technology for chemically fixing CO and manufacturing degradable polymeric materials. However, research on the copolymerization of CO and 1,2-butylene oxide (BO) to produce polycarbonate ether polyol is relatively scarce. Herein, we employed layered Zn-Co double metal cyanide (L-DMC) as a catalyst for the copolymerization of CO and BO to obtain polycarbonate ether polyol. Under optimized conditions, the L-DMC-mediated copolymerization of CO and BO displays excellent activity (catalytic productivity up to 1500 g polymer per g catalyst) and a high CO incorporation fraction in polycarbonate ether polyol rate of 35.5%. FTIR spectroscopy experiments showed a short induction period (10 min) in polymerization and competition between the synthesized polycarbonate ether polyol and butylene carbonate (BC). The properties of easy preparation, stability, and excellent catalytic performance of L-DMC suggest that it may be a promising candidate for large-scale production of CO-BO-based polymers.

摘要

通过二氧化碳(CO₂)与环氧化物共聚合成聚碳酸酯醚多元醇是一种在化学固定CO₂和制造可降解聚合物材料方面很有前景的技术。然而,关于CO₂与1,2-环氧丁烷(BO)共聚制备聚碳酸酯醚多元醇的研究相对较少。在此,我们采用层状锌-钴双金属氰化物(L-DMC)作为CO₂与BO共聚的催化剂来制备聚碳酸酯醚多元醇。在优化条件下,L-DMC介导的CO₂与BO共聚表现出优异的活性(催化产率高达每克催化剂1500克聚合物),并且在聚碳酸酯醚多元醇中的CO₂掺入率高达35.5%。傅里叶变换红外光谱(FTIR)实验表明聚合过程中的诱导期较短(10分钟),且合成的聚碳酸酯醚多元醇与碳酸丁烯酯(BC)之间存在竞争。L-DMC易于制备、稳定性好且催化性能优异,这表明它可能是大规模生产基于CO₂-BO的聚合物的有前途的候选催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8a6/11519777/4c1452f0df25/d4ra06913g-f1.jpg

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