聚酯纤维
一氧化碳
共聚物
羰基化
化学
烯烃纤维
聚合物
高分子化学
聚合
分子内力
催化作用
区域选择性
马尔科夫尼科夫法则
配体(生物化学)
一氧化碳
链式传播
组合化学
有机化学
碳链
功能群
材料科学
“结束”组
碳纤维
烯烃
丙烯酸酯
作者
Jiawen Ren,Huilin Xie,Can Liao,Shuaishuai Zhu,Jacky W. Y. Lam,Yue Wang,Ben Zhong Tang
摘要
ABSTRACT Conventional methods for polyester synthesis offer limited control over stereochemistry and exhibit constrained functional group tolerance, restricting access to unsaturated polymer architectures with programmable backbone dynamics and critically precluding the formation of ultra‐high‐molecular‐weight (UHMW) chains required for advanced mechanical performance. Here, we report a palladium‐catalyzed carbonylative alternating copolymerization that directly transforms readily available terminal ynols and carbon monoxide into well‐defined unsaturated polyesters. By strategically extending the ynol chain length, we suppress the entropically favored intramolecular cyclization pathway and instead promote intermolecular, enthalpy‐driven chain growth. Ligand engineering of the Pd/phosphine catalytic system achieves exceptional regioselectivity (>99%) for Markovnikov addition, producing regioregular α,β ‐unsaturated polyesters with UHMW ( M n up to 1,390 kDa) and controlled E / Z olefin ratios (up to 99:1). This alkynol‐based carbonylative polymerization establishes a versatile platform for synthesizing functional UHMW polyesters with tailored topologies, addressing long‐standing challenges in precision polyester synthesis and sustainable polymer design.
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