Suppr超能文献

通过 Bergman 环化聚合构建具有各种结构特征的聚芳炔。

Construction of Polyarylenes with Various Structural Features via Bergman Cyclization Polymerization.

机构信息

Shanghai Key Laboratory of Advanced Polymeric Materials, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai, 200237, China.

出版信息

Top Curr Chem (Cham). 2017 Jun;375(3):60. doi: 10.1007/s41061-017-0145-4. Epub 2017 May 22.

Abstract

Synthetic polymer chemistry is a fundamental part of polymer science, and highly efficient polymerization reactions are essential for the synthesis of high-performance polymers. Development of new synthetic methods for emerging polymer science is of great importance in this regard. Bergman cyclization is a chemical process in which highly reactive aryl diradicals form from enediyne precursors, having a strong impact in a number of fields including pharmaceutics, synthetic chemistry, and materials science. Diradical intermediates stemming from enediynes can cause DNA cleavage under physiological conditions, leading to the strong cytotoxicity of many naturally occurring enediyne antibiotics. Meanwhile, diradical intermediates can quickly couple with each other to construct polyarylenes, providing a novel method to synthesize these conjugated polymers with the advantages of facile and catalyst-free operation, high efficiency, and tailored structure. Moreover, conjugated polymers generated by Bergman cyclization exhibit many remarkable properties, such as excellent thermal stability and good solubility and processability, enabling their further processing into carbon-rich materials. This review presents a brief overview of the trajectory of Bergman cyclization in polymer science, followed by an introduction to research advances, mainly from our group, in developing polymerization methods based on Bergman cyclization, taking advantages of its catalyst-free, byproduct-free, in situ polymerization mechanism to synthesize new polymeric materials with various structures and morphologies. These synthetic strategies include fabrication of rod-like polymers with polyester, dendrimer, and chiral imide side chains, functionalization of carbon nanomaterials by surface-grafting conjugated polymers, formation of nanoparticles by intramolecular collapse of single polymer chains, and construction of carbon nanomembranes on the external and internal surface of inorganic nanomaterials. These polymers with novel structural features have been used in a variety of fields, such as energy transformation, energy storage, catalyst support, and fluorescent detection. Finally, the outlook for future developments of Bergman cyclization in polymer science is presented.

摘要

合成聚合物化学是聚合物科学的一个基础部分,高效的聚合反应对于高性能聚合物的合成至关重要。开发新兴聚合物科学的新合成方法在这方面非常重要。伯格曼环化是一种化学反应过程,其中高度反应性的芳基双自由基由烯二炔前体形成,在包括药物、合成化学和材料科学在内的多个领域都有强烈的影响。烯二炔产生的自由基中间体在生理条件下可以导致 DNA 断裂,从而导致许多天然存在的烯二炔抗生素具有强烈的细胞毒性。同时,自由基中间体可以迅速彼此偶联,构建聚芳基,为合成这些共轭聚合物提供了一种新方法,具有操作简单、无需催化剂、高效率和可定制结构的优点。此外,伯格曼环化产生的共轭聚合物表现出许多显著的性质,如优异的热稳定性和良好的溶解性和加工性,使其能够进一步加工成富碳材料。本综述简要介绍了伯格曼环化在聚合物科学中的发展轨迹,随后介绍了我们小组在开发基于伯格曼环化的聚合方法方面的研究进展,利用其无催化剂、无副产物、原位聚合机制的优势,合成具有各种结构和形态的新型聚合材料。这些合成策略包括用聚酯、树枝状大分子和手性亚胺侧链制备棒状聚合物,通过表面接枝共轭聚合物对碳纳米材料进行功能化,通过单链聚合物分子的分子内坍塌形成纳米粒子,以及在无机纳米材料的内外表面构建碳纳米膜。这些具有新颖结构特征的聚合物已被用于各种领域,如能量转换、能量存储、催化剂载体和荧光检测。最后,对伯格曼环化在聚合物科学中的未来发展进行了展望。

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