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用于增强性能和可回收性的碳硅氧烷瓶刷网络

Carbosiloxane Bottlebrush Networks for Enhanced Performance and Recyclability.

作者信息

Eom Taejun, Getty Patrick T, Czuczola Michael, Bates Christopher M, Hawker Craig J

机构信息

Department of Polymer Science and Engineering, Kumoh National Institute of Technology, 61 Daehak-ro, Gumi, Gyeongbuk 39177, Republic of Korea.

Materials Department, University of California, Santa Barbara, Santa Barbara, California 93106, United States.

出版信息

Macromolecules. 2024 Nov 8;57(22):10522-10529. doi: 10.1021/acs.macromol.4c02147. eCollection 2024 Nov 26.

Abstract

Silicone bottlebrush copolymers and networks derived from cyclic carbosiloxanes are reported and shown to have enhanced properties and recyclability compared with traditional dimethylsiloxane-based materials. The preparation of these materials is enabled by the synthesis of well-defined heterotelechelic macromonomers with Si-H and norbornene chain ends via anionic ring-opening polymerization of the hybrid carbosiloxane monomer 2,2,5,5-tetramethyl-2,5-disila-1-oxacyclopentane. These novel heterotelechelic α-Si-H/ω-norbornene macromonomers undergo efficient ring-opening metathesis copolymerization to yield functional bottlebrush polymers with accurate control over molecular weight and functional-group density. Si-H groups retained at the ends of side-chains after ring-opening metathesis copolymerization allow for the preparation of supersoft networks via hydrosilylation with cross-linkers such as tetrakis[dimethyl(vinyl)silyl]orthosilicate. In contrast to traditional PDMS systems, the incorporation of poly(carbosiloxane) side chains allows the resulting networks to be recycled back to the original monomer (>85% recovery) via depolymerization at elevated temperatures (250 °C) in the presence of base catalysts (potassium hydroxide and tetramethylammonium hydroxide). The recovered monomer was successfully repolymerized through anionic ring-opening polymerization with no decrease in structural fidelity or activity. In summary, this combination of unique (macro)monomer design and bottlebrush architecture creates new opportunities in sustainable practices by offering a robust, recyclable alternative to commercial silicone-based materials.

摘要

据报道,由环状碳硅氧烷衍生而来的硅酮瓶刷共聚物和网络结构,与传统的基于二甲基硅氧烷的材料相比,具有增强的性能和可回收性。通过杂化碳硅氧烷单体2,2,5,5-四甲基-2,5-二硅-1-氧杂环戊烷的阴离子开环聚合反应,合成具有Si-H和降冰片烯链端的结构明确的杂双官能大分子单体,从而实现了这些材料的制备。这些新型的杂双官能α-Si-H/ω-降冰片烯大分子单体进行高效的开环易位共聚反应,以精确控制分子量和官能团密度,从而得到功能性瓶刷聚合物。开环易位共聚反应后,侧链末端保留的Si-H基团使得通过与交联剂(如原硅酸四[二甲基(乙烯基)硅基]酯)进行硅氢加成反应来制备超软网络结构成为可能。与传统的聚二甲基硅氧烷体系不同,聚(碳硅氧烷)侧链的引入使得所得网络结构在碱催化剂(氢氧化钾和氢氧化四甲基铵)存在下,于高温(250℃)通过解聚反应可循环回原始单体(回收率>85%)。回收的单体通过阴离子开环聚合成功地重新聚合,且结构保真度或活性没有降低。总之,这种独特的(大)单体设计和瓶刷结构的结合,通过提供一种坚固、可回收的商业硅基材料替代品,为可持续实践创造了新的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d040/11603783/6d1def16d690/ma4c02147_0001.jpg

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