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超致密瓶刷聚合物的精确合成揭示了溶致有序化中的独特趋势。

The Precise Synthesis of Ultradense Bottlebrush Polymers Unearths Unique Trends in Lyotropic Ordering.

作者信息

Kolozsvary Timea, Kohl Phillip, Li Tianyu, Gillespie David, Li Youli, McDonald Benjamin R

机构信息

Department of Chemistry at Brown University, 324 Brook Street, Providence, Rhode Island 02912, United States.

Materials Research Laboratory at UC Santa Barbara, Santa Barbara, California 93106, United States.

出版信息

J Am Chem Soc. 2025 Jan 8;147(1):889-897. doi: 10.1021/jacs.4c13759. Epub 2024 Dec 24.

Abstract

Biomacromolecular networks with multiscale fibrillar structures are characterized by exceptional mechanical properties, making them attractive architectures for synthetic materials. However, there is a dearth of synthetic polymeric building blocks capable of forming similarly structured networks. Bottlebrush polymers (BBPs) are anisotropic graft polymers with the potential to mimic and replace biomacromolecules such as tropocollagen for the fabrication of synthetic fibrillar networks; however, a longstanding limitation of BBPs has been the lack of rigidity necessary to access the lyotropic ordering that underpins the formation of collagenous networks. While the correlation between BBP rigidity and grafting density is well established, synthetic approaches to rigidify BBPs by increased grafting density are underdeveloped. To address this gap in synthetic capability, we report the synthesis of novel macroinitiators that provide well-defined BBPs with an unprecedentedly high grafting density. A suite of light scattering techniques are used to correlate macromolecular rigidity with grafting architecture and density and demonstrate for the first time that poly(norbornene) BBPs exhibit long-range lyotropic ordering as a result of their rodlike character. Specifically, the newly reported ultradensely grafted structures, preparable on multigram scale, form hexagonal arrays while conventional BBPs do not, despite showing long-range spatial correlations. These results implicate the central role of density and entanglement in the solution phase assembly of BBPs and provide new fundamental insight that is broadly relevant to the fabrication and performance of BBP-derived materials, spanning biomedical research to photonic materials and thermal management technologies. Furthermore, these newly reported liquid crystalline BBPs provide a structural template to explore the untapped potential of the bottom-up assembly of semiflexible networks and are ultimately intended to provide a modular route to hierarchically structured biomimetic materials.

摘要

具有多尺度纤维状结构的生物大分子网络具有卓越的机械性能,使其成为合成材料极具吸引力的结构。然而,缺乏能够形成类似结构网络的合成聚合物构建块。刷状聚合物(BBP)是各向异性接枝聚合物,有潜力模拟和替代原胶原蛋白等生物大分子用于合成纤维状网络的制造;然而,BBP长期存在的一个限制是缺乏形成支撑胶原网络形成的溶致有序所需的刚性。虽然BBP刚性与接枝密度之间的相关性已得到充分确立,但通过增加接枝密度使BBP刚性化的合成方法仍未得到充分发展。为了弥补这种合成能力上的差距,我们报道了新型大分子引发剂的合成,这些引发剂能提供具有前所未有的高接枝密度的定义明确的BBP。一系列光散射技术被用于将大分子刚性与接枝结构和密度相关联,并首次证明聚降冰片烯BBP由于其棒状特征而表现出长程溶致有序。具体而言,新报道的超密集接枝结构可在多克规模上制备,形成六边形阵列,而传统BBP尽管显示出长程空间相关性,但却不会形成六边形阵列。这些结果表明密度和缠结在BBP溶液相组装中的核心作用,并提供了新的基础见解,这与BBP衍生材料的制造和性能广泛相关,涵盖生物医学研究、光子材料和热管理技术。此外,这些新报道的液晶BBP提供了一个结构模板,以探索半柔性网络自下而上组装尚未开发的潜力,并最终旨在提供一条通往层次结构仿生材料的模块化途径。

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