Suppr超能文献

由单一网络中三元交联点协同作用促进形成的坚固且可自愈的纳米复合物理水凝胶。

Robust and self-healable nanocomposite physical hydrogel facilitated by the synergy of ternary crosslinking points in a single network.

作者信息

Shi Fu-Kuan, Zhong Ming, Zhang Li-Qin, Liu Xiao-Ying, Xie Xu-Ming

机构信息

Key Laboratory of Advanced Materials (MOE), Department of Chemical Engineering, Tsinghua University, Beijing, 100084, P. R. China.

出版信息

J Mater Chem B. 2016 Oct 7;4(37):6221-6227. doi: 10.1039/c6tb01606e. Epub 2016 Sep 7.

Abstract

Acrylamide (AM) and a small amount of stearyl methacrylate (C18) hydrophobic monomer copolymerize to graft on the surface of vinyl hybrid silica nanoparticles (VSNPs), forming nanobrush gelators, thereby constructing ternarily crosslinked nanocomposite physical hydrogels (TC-NCP gels). The TC-NCP gel is composed of a single network ternarily crosslinked by hydrogen bonds and hydrophobic interactions among the grafting polymer chains as physical cross-linking points and thus the polymer grafted VSNPs as analogous covalent crosslinking points. Under stretching, the physical crosslinking points successively break to gradually dissipate energy and then recombine to homogenize the network. During the stretching process, the polymer chains grafted VSNPs can homogenize the stress distribution as transferring centers. The synergy of the ternary crosslinking points leads the TC-NCP gels to dissipate more energy and redistribute the stress more effectively when compared with hydrogels dually crosslinked by both hydrogen bonds and VSNPs as analogous covalent crosslinking points (without hydrophobic interactions) and by both hydrogen bonds and hydrophobic interactions (without VSNPs). As a result, the TC-NCP gels demonstrate remarkably improved mechanical properties, including tensile strength of 256 kPa, stretch ratio at break of 28.23 and toughness of 1.92 MJ m at a water content of 90%. Pure shear test shows that the TC-NCP gel is able to resist notch propagation by micro-crack development from the notch tip to the whole gel network and has a high tearing energy of 1.21 × 10 J m. The dynamic nature of the network endows the TC-NCP gels with excellent self-healing ability. The results evidently indicate that constructing a single gel network with hierarchical crosslinking points is a versatile method to fabricate robust hydrogels.

摘要

丙烯酰胺(AM)与少量甲基丙烯酸硬脂酯(C18)疏水单体共聚,接枝到乙烯基杂化二氧化硅纳米颗粒(VSNPs)表面,形成纳米刷凝胶因子,从而构建三元交联纳米复合物理水凝胶(TC-NCP凝胶)。TC-NCP凝胶由单一网络组成,该网络通过接枝聚合物链之间的氢键和疏水相互作用进行三元交联,作为物理交联点,聚合物接枝的VSNPs作为类似的共价交联点。在拉伸过程中,物理交联点相继断裂以逐渐耗散能量,然后重新组合以使网络均匀化。在拉伸过程中,聚合物接枝的VSNPs可以作为转移中心使应力分布均匀化。与仅通过氢键和VSNPs作为类似共价交联点(无疏水相互作用)以及仅通过氢键和疏水相互作用(无VSNPs)双重交联的水凝胶相比,三元交联点的协同作用使TC-NCP凝胶能够耗散更多能量并更有效地重新分布应力。结果,TC-NCP凝胶表现出显著改善的机械性能,在水含量为90%时,拉伸强度为256 kPa,断裂伸长率为28.23,韧性为1.92 MJ m。纯剪切试验表明,TC-NCP凝胶能够通过从缺口尖端到整个凝胶网络的微裂纹扩展来抵抗缺口扩展,并且具有1.21×10 J m的高撕裂能。网络的动态性质赋予TC-NCP凝胶优异的自愈能力。结果清楚地表明,构建具有分级交联点的单一凝胶网络是制备坚固水凝胶的通用方法。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验