聚苯乙烯玻璃体的线性粘弹性:节段运动和慢阿伦尼乌斯过程

IF 5.2 1区 化学 Q1 POLYMER SCIENCE
Daniel C. Barzycki, Dana Ezzeddine, Sachin Shanbhag* and Ralm G. Ricarte*, 
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引用次数: 0

摘要

Vitrimers是由缔合交联连接的聚合物网络,共价键维持网络连通性,但通过可逆化学反应进行交换。缔合交联极大地改变了熔融聚合物的动力学。本文研究了含亚胺交联聚苯乙烯玻璃体(PS-v)的线性粘弹性。前驱体共聚物与悬垂醛和1,6-己二胺交联剂缩合制备了PS-v样品。前驱体的数平均分子量为6 ~ 8 kDa,胺醛摩尔比(r)在0.8 ~ 2.4之间。玻璃化转变温度与r呈非单调关系。利用小振幅振荡剪切(SAOS)、应力松弛、蠕变和恢复的组合来评估PS-v的线性粘弹性。时间-温度叠加分析显示了两种不同的弛豫机制:(I)具有Williams-Landel-Ferry温度依赖性的快速高频动力学和(II)具有Arrhenius行为的缓慢低频动力学。快速状态表示玻璃体骨架的节段性松弛。慢态被描述为慢阿伦尼乌斯过程,其中长时间动力学具有与温度无关的流变活化能。对于本研究中的所有PS-v样品,观察到的SAP对温度的依赖性要比粘性劳斯模型预测的弱得多。增加r改变了平台模量和SAOS交叉频率,但不影响节段运动或SAP的温度依赖性。为了描述SAP的起源,提出了三个假设:交联剂扩散、聚合物基质效应和局部弹性波动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Linear Viscoelasticity of Polystyrene Vitrimers: Segmental Motions and the Slow Arrhenius Process

Linear Viscoelasticity of Polystyrene Vitrimers: Segmental Motions and the Slow Arrhenius Process

Vitrimers are polymer networks connected by associative cross-links─covalent linkages that maintain network connectivity but exchange through reversible chemical reactions. Associative cross-links significantly change the dynamics of the molten polymer. This study focuses on the linear viscoelasticity of polystyrene vitrimers (PS-v) bearing imine cross-links. PS-v samples were prepared by condensation between precursor copolymers with pendant aldehydes and 1,6-hexanediamine cross-linker. The number-average molecular weights of the precursors were 6 and 8 kDa, and the amine-to-aldehyde molar ratio (r) ranged between 0.8 and 2.4. The glass transition temperature exhibited a nonmonotonic relationship with r. The linear viscoelasticity of PS-v was evaluated using a combination of small amplitude oscillatory shear (SAOS), stress relaxation, and creep and recovery. Time–temperature superposition analyses indicated two distinct relaxation regimes: (I) fast high frequency dynamics with a Williams–Landel–Ferry temperature dependence and (II) slow low frequency dynamics with Arrhenius behavior. The fast regime represented the segmental relaxations of the vitrimer backbone. The slow regime was described as a slow Arrhenius process (SAP), in which the long time dynamics have a temperature-independent rheological activation energy. For all PS-v samples in this study, the observed SAP had a much weaker temperature dependence than expected from sticky Rouse model predictions. Increasing r altered the plateau modulus and SAOS crossover frequency but did not affect the temperature dependences of the segmental motions or SAP. To describe the origin of the SAP, three hypotheses are proposed: cross-linker diffusion, polymer matrix effects, and local elasticity fluctuations.

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来源期刊
Macromolecules
Macromolecules 工程技术-高分子科学
CiteScore
9.30
自引率
16.40%
发文量
942
审稿时长
2 months
期刊介绍: Macromolecules publishes original, fundamental, and impactful research on all aspects of polymer science. Topics of interest include synthesis (e.g., controlled polymerizations, polymerization catalysis, post polymerization modification, new monomer structures and polymer architectures, and polymerization mechanisms/kinetics analysis); phase behavior, thermodynamics, dynamic, and ordering/disordering phenomena (e.g., self-assembly, gelation, crystallization, solution/melt/solid-state characteristics); structure and properties (e.g., mechanical and rheological properties, surface/interfacial characteristics, electronic and transport properties); new state of the art characterization (e.g., spectroscopy, scattering, microscopy, rheology), simulation (e.g., Monte Carlo, molecular dynamics, multi-scale/coarse-grained modeling), and theoretical methods. Renewable/sustainable polymers, polymer networks, responsive polymers, electro-, magneto- and opto-active macromolecules, inorganic polymers, charge-transporting polymers (ion-containing, semiconducting, and conducting), nanostructured polymers, and polymer composites are also of interest. Typical papers published in Macromolecules showcase important and innovative concepts, experimental methods/observations, and theoretical/computational approaches that demonstrate a fundamental advance in the understanding of polymers.
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