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四重氢键超分子聚合物的微相分离:脲基嘧啶酮的空间位阻对其粘弹性的影响。

Microphase separation of a quadruple hydrogen bonding supramolecular polymer: effect of the steric hindrance of the ureido-pyrimidone on their viscoelasticity.

作者信息

Kan Lei, Zhang Peng, Jiang Hongkun, Zhang Shuai, Liu Zhengdao, Zhang Xinyue, Ma Ning, Qiu Dengli, Wei Hao

机构信息

Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education & College of Materials Science and Chemical Engineering, Harbin Engineering University Harbin 150001 China

Bruker (Beijing) Scientific Technology Co., Ltd. Beijing 100081 China.

出版信息

RSC Adv. 2019 Mar 18;9(16):8905-8911. doi: 10.1039/c8ra08861f. eCollection 2019 Mar 15.

Abstract

Supramolecular polymers based on 2-ureido-4[1]-pyrimidone (UPy) units with extremely high dimerization constants and adjustable properties have received significant attention. In this work, we attempt to discuss the relationship between the micro-phase separation and the viscoelastic properties of the supramolecular polymers. For this reason, polymers with different UPy moieties structures and different UPy moieties contents were prepared and studied. It was found that the UPy moiety with little hindrance at the six-position of the pyrimidone could self-assemble into a nano-fiber structure and the degree of the micro-phase separation increased with the content of the UPy moiety. With the enlargement of the steric hindrance of the six-position of the pyrimidone, the nano-fiber structure gradually disappeared, meaning the degree of the micro-phase separation decreased astonishingly. More importantly, with the degree of the micro-phase separation increased, the storage modulus or the elasticity modulus increased exponentially and the and the loss modulus area increased linearly. These results would lead a new way to study and develop novel polymeric materials.

摘要

基于具有极高二聚常数和可调性质的2-脲基-4[1]-嘧啶酮(UPy)单元的超分子聚合物受到了广泛关注。在这项工作中,我们试图探讨超分子聚合物的微相分离与粘弹性性质之间的关系。为此,制备并研究了具有不同UPy部分结构和不同UPy部分含量的聚合物。结果发现,嘧啶酮六位位阻较小的UPy部分能够自组装成纳米纤维结构,且微相分离程度随UPy部分含量的增加而增大。随着嘧啶酮六位位阻的增大,纳米纤维结构逐渐消失,这意味着微相分离程度惊人地降低。更重要的是,随着微相分离程度的增加,储能模量或弹性模量呈指数增加,损耗模量面积呈线性增加。这些结果将为新型高分子材料的研究和开发开辟一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9844/9061864/0225f26886ba/c8ra08861f-s1.jpg

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