DOI: 10.1002/ange.4383253 ISSN: 0044-8249

Direct Synthesis of Well‐Defined Epoxide‐Terminated Telechelic Polymers via an Alcohol‐Mediated Self‐Switching Strategy

Shuo Yan, Shunjie Liu, Zihe Liu, Can Liao, Qinghai Zhou, Hongming Zhang, Xianhong Wang

ABSTRACT

The one‐step synthesis of well‐defined telechelic polymers represents a highly attractive approach, providing an efficient alternative to conventional stepwise synthetic protocols. However, achieving such control remains challenging due to the competitive nature of chain propagation and end‐group functionalization, which often leads to uncontrolled chain‐end structures and broad dispersities. Here, we report an alcohol‐mediated self‐switching strategy, in which the dominant chain‐end reaction shifts from propagation to end‐group functionalization upon consumption of one monomer component within a single reaction system. Using epichlorohydrin, a multisite monomer, as a model for the ring‐opening alternating copolymerization with cyclic anhydrides, we obtained well‐defined epoxide‐terminated telechelic polyesters with narrow dispersities ( Đ ∼ 1.1), high end‐group fidelity (>99%), and controllable linear, three‐arm, and four‐arm architectures under alcohol‐mediated conditions. Mechanistic studies reveal that monomer activation and stabilization of the living species through hydrogen‐bonding interactions, combined with the zero‐order kinetics of cyclic anhydride, facilitate rapid propagation while suppressing premature functionalization. Subsequent intramolecular cyclization of β‐chlorohydrin living chain ends, along with proton‐transfer‐induced dehydrochlorination of β‐chlorohydrin dormant chain ends, collectively ensure quantitative epoxide end‐group formation. These results elucidate the catalyst‐like roles of alcohol and establish self‐switching of competing chain‐end reactions as a practical strategy for the direct synthesis of well‐defined telechelic polymers.

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