中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Mechanical enhancement mechanism of interlocked polymer networks

文献类型:期刊论文

;
作者Dai W.T.; Xie Z.H.; Ke Y.B.; You Y.; Rong M.Z.; Zhang M.Q.; He C.Y.; Jiang H.Q.; Yang H.
刊名Materials Today Physics ; Materials Today Physics
出版日期2022 ; 2022
卷号27页码:100768
DOI10.1016/j.mtphys.2022.100768 ; 10.1016/j.mtphys.2022.100768
文献子类Article ; Article
英文摘要To understand the molecular origin of the significantly improved mechanical properties of the newly emerged reversibly interlocked polymer networks (ILNs), which are composed of two dynamically crosslinked polymers regardless of their miscibility, the present work employs small angle neutron scattering (SANS) technique to study the microstructural evolution of the materials during stretching. Accordingly, polyacrylate networks containing reversible Diels-Alder (DA) bonds and polyether networks containing reversible Schiff base bonds are synthesized and then interlocked together through topological rearrangement of the two single networks. By using deuterated acrylate monomers, furthermore, the single networks with DA bonds are labeled, providing the model ILNs with necessary contrast for the SANS measurements. The strain-dependent SANS profiles and 2D SANS patterns of the ILNs reveal that the latter maintain the homogeneity after extension. It means that the two parent single networks are simultaneously deformed because the interlocking sites act as movable crosslinkages, so that the chains conformation can be modulated and the applied stress can be effectively transferred. When relative movement of the neighboring molecular chains occurs, a great number of molecular chains in the interlocked polymer networks are able to be tightened at the same time, and more mechanical energy can be dissipated by internal friction in the process. The findings reveal that the mechanical enhancement results from the unique interlocked structure, and provide guidance for the rational design of high-performance multi-component polymer materials. © 2022 Elsevier Ltd; To understand the molecular origin of the significantly improved mechanical properties of the newly emerged reversibly interlocked polymer networks (ILNs), which are composed of two dynamically crosslinked polymers regardless of their miscibility, the present work employs small angle neutron scattering (SANS) technique to study the microstructural evolution of the materials during stretching. Accordingly, polyacrylate networks containing reversible Diels-Alder (DA) bonds and polyether networks containing reversible Schiff base bonds are synthesized and then interlocked together through topological rearrangement of the two single networks. By using deuterated acrylate monomers, furthermore, the single networks with DA bonds are labeled, providing the model ILNs with necessary contrast for the SANS measurements. The strain-dependent SANS profiles and 2D SANS patterns of the ILNs reveal that the latter maintain the homogeneity after extension. It means that the two parent single networks are simultaneously deformed because the interlocking sites act as movable crosslinkages, so that the chains conformation can be modulated and the applied stress can be effectively transferred. When relative movement of the neighboring molecular chains occurs, a great number of molecular chains in the interlocked polymer networks are able to be tightened at the same time, and more mechanical energy can be dissipated by internal friction in the process. The findings reveal that the mechanical enhancement results from the unique interlocked structure, and provide guidance for the rational design of high-performance multi-component polymer materials. © 2022 Elsevier Ltd
电子版国际标准刊号25425293 ; 25425293
语种英语 ; 英语
源URL[http://ir.ihep.ac.cn/handle/311005/299853]  
专题高能物理研究所_东莞分部
作者单位中国科学院高能物理研究所
推荐引用方式
GB/T 7714
Dai W.T.,Xie Z.H.,Ke Y.B.,et al. Mechanical enhancement mechanism of interlocked polymer networks, Mechanical enhancement mechanism of interlocked polymer networks[J]. Materials Today Physics, Materials Today Physics,2022, 2022,27, 27:100768, 100768.
APA Dai W.T..,Xie Z.H..,Ke Y.B..,You Y..,Rong M.Z..,...&Yang H..(2022).Mechanical enhancement mechanism of interlocked polymer networks.Materials Today Physics,27,100768.
MLA Dai W.T.,et al."Mechanical enhancement mechanism of interlocked polymer networks".Materials Today Physics 27(2022):100768.

入库方式: OAI收割

来源:高能物理研究所

浏览0
下载0
收藏0
其他版本

除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。