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通过光引发 RAFT 分散聚合在室温下同时合成和自组装刷型嵌段共聚物。

Simultaneous Synthesis and Self-Assembly of Bottlebrush Block Copolymers at Room Temperature via Photoinitiated RAFT Dispersion Polymerization.

机构信息

Department of Polymeric Materials and Engineering, School of Materials and Energy, Guangdong University of Technology, Guangzhou, 510006, P. R. China.

Guangdong Provincial Key Laboratory of Functional Soft Condensed Matter, Guangzhou, 510006, P. R. China.

出版信息

Macromol Rapid Commun. 2022 Apr;43(8):e2100921. doi: 10.1002/marc.202100921. Epub 2022 Mar 7.

Abstract

Bottlebrush polymers exhibiting unique properties have attracted considerable attention for applications in many research areas. Herein, the first simultaneous synthesis and self-assembly of bottlebrush block copolymers at room temperature via photoinitiated polymerization-induced self-assembly (photo-PISA) using multifunctional macromolecular chain transfer agents (macro-CTAs) is reported. Comparing with linear block copolymers, the bottlebrush block copolymers can promote the formation of higher-order morphologies (e.g., vesicles) when targeting similar degrees of polymerization (DPs). Moreover, a higher polymerization rate is observed in the case of bottlebrush block copolymers. Gel permeation chromatography (GPC) analysis shows that good polymerization control is maintained when synthesizing bottlebrush block copolymers by photo-PISA. Finally, the obtained bottlebrush block copolymer vesicles are used as seeds for further chain extension and multicompartment nanoparticles with a sponge internal structure are formed. It is expected that this study will not only expand polymer architectures employed in PISA, but also provide a new strategy to synthesize polymer nanoparticles with unique structures.

摘要

具有独特性质的瓶刷聚合物因其在许多研究领域的应用而受到广泛关注。本文首次报道了通过多功能大分子链转移剂(macro-CTA)的光引发聚合诱导自组装(photo-PISA),在室温下同时合成和自组装瓶刷嵌段共聚物。与线性嵌段共聚物相比,当目标具有相似聚合度(DP)时,瓶刷嵌段共聚物可以促进更高阶形态(例如囊泡)的形成。此外,在瓶刷嵌段共聚物的情况下观察到更高的聚合速率。凝胶渗透色谱(GPC)分析表明,通过 photo-PISA 合成瓶刷嵌段共聚物时,仍能保持良好的聚合控制。最后,所得的瓶刷嵌段共聚物囊泡被用作进一步链延伸的种子,形成具有海绵状内部结构的多隔纳米粒子。预计这项研究不仅将扩展用于 PISA 的聚合物结构,而且还将为合成具有独特结构的聚合物纳米粒子提供一种新策略。

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