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Resilient polymer networks via thiol-norbornene chemistry: Mechanical and adhesive properties.

机译:通过硫醇-降冰片烯化学的弹性聚合物网络:机械和粘合性能。

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摘要

Hydrogels, a class of materials composed of polymer networks swollen with large amounts of water, have gained increasing attention in a range of fields, from tissue engineering to food science. However, synthetic hydrogels are known to be brittle and have poor mechanical properties, including low extension ratios and fracture toughnesses. It has been a great challenge to develop synthetic hydrogels with improved mechanical properties and correlate with their network composition. In this dissertation we developed two robust well-defined synthetic hydrogel systems by two simple strategies—thiol-norbornene chemistry and ring opening metathesis polymerization (ROMP). The swelling and mechanical properties were systematically characterized and correlated with their network structures.;The PEG/PDMS hydrogels synthesized by the simple, efficient, photo-initiated thiol-norbornene chemistry have improved mechanical properties. By manipulating the volume fractions of the PEG and PDMS, a large range of water content (54%–97%) was achieved. The Young's modulus (E) was significantly improved by increasing the volume fraction of PDMS in the hydrogel, and the Voigt and Reuss models were used to quantify the relationship between the volume fraction and E. In addition, increasing the volume fraction and molecular weight of the PDMS led to tougher hydrogels with Gc more than 100 J/m2. Furthermore, a high resilience (more than 97%) was maintained across the entire range of strains, regardless of the composition of the PEG/PDMS hydrogels.;Controlled polymerization provides another method to synthesize gels with improved mechanical performance. The properties of the ROMP-based gels were tuned by varying the initial molar ratio of the monomer to cross-linker from 7.5% to 20%. The mechanical properties of the gels were characterized via the cavitation rheology technique (CRT), which demonstrated a transition from reversible to irreversible deformation with the increase of the molar ratio. By combining CRT and contact mechanics, E and Gc for these gels were quantified. As the amount of the cross-linker increased, E increased while G c slightly decreased.;Soft tissues with hierarchical structures share similar properties as synthetic hydrogels. The study of their mechanical properties would provide useful information in designing synthetic hydrogels with novel network structures. Eye lens was chosen in this study. The anisotropic mechanical properties of bovine eye lenses were measured using CRT over a range of length scales. E of the nucleus and cortex of the lens were determined, as approximately 11.8 and 0.8 kPa, respectively, on macroscopic length scales. We also measured the mechanical properties of the lens on a length scale of a single cell, suggesting that the stiffness significantly decreased from that in the bulk measurements for both the nucleus and cortex. In addition, during the growth of the cavity anisotropic propagation in the cortex was observed, while in the nucleus, the propagation was isotropic. We further explored the elasticity of the cavity deformation, showing both elastic and inelastic deformation occurred in the nucleus with equal contributions while deformation in the cortex was elastic and reversible.;Lastly, we investigated adhesive properties of polymer networks with the thiol-norbornene chemistry to explore their possible applications. The mechanical and adhesive properties of these PDMS networks were quantified by the contact adhesion test (CAT), as well as DMA and compressive measurements. E of these end-linked PDMS measured by CAT was comparable with that measured by the compressive test. In terms of the adhesion properties, the energy release rate was described as a function of crack velocity. A higher molecular weight between cross-links led to a higher adhesion energy over a range of crack velocity for the PDMS with the same end-linking chemistry. Sylgard PDMS with 18 to 1 ratio was chosen to compare the mechanical and adhesive properties to the end-linked PDMS. With the similar Young's modulus and resilience, the adhesion energy of the Sylgard PDMS was comparable to that of the end-linked PDMS with 5 kDa molecular weight, which was likely to result from the comparable molecular weight between cross-links.
机译:水凝胶是一类由大量水溶胀的聚合物网络组成的材料,在从组织工程到食品科学的各个领域中,水凝胶受到越来越多的关注。然而,已知合成水凝胶易碎并且具有较差的机械性能,包括低的延伸率和断裂韧性。开发具有改善的机械性能并与其网络组成相关的合成水凝胶是一个巨大的挑战。在本文中,我们通过两种简单的策略(硫醇-降冰片烯化学和开环复分解聚合(ROMP))开发了两个功能强大,定义明确的合成水凝胶体系。系统地表征了溶胀和机械性能,并与它们的网络结构相关联。通过简单,有效,光引发的硫醇-降冰片烯化学合成的PEG / PDMS水凝胶具有改善的机械性能。通过操纵PEG和PDMS的体积分数,可以实现大范围的水含量(54%–97%)。通过增加水凝胶中PDMS的体积分数,可以显着提高杨氏模量(E),并使用Voigt和Reuss模型对体积分数和E之间的关系进行定量。此外,增加了水凝胶中PDMS的体积分数和分子量PDMS导致Gc超过100 J / m2的更坚硬的水凝胶。此外,无论PEG / PDMS水凝胶的组成如何,在整个菌株范围内都可保持较高的回弹力(超过97%)。受控聚合提供了另一种合成具有改善机械性能的凝胶的方法。通过将单体与交联剂的初始摩尔比从7.5%更改为20%,可以调整基于ROMP的凝胶的性能。凝胶的机械性能通过空化流变技术(CRT)进行表征,该技术显示出随着摩尔比的增加,可逆变形从不可逆变形转变为不可逆变形。通过结合CRT和接触力学,可以定量这些凝胶的E和Gc。随着交联剂含量的增加,E值增加,而G c值略有下降。;具有分层结构的软组织与合成水凝胶具有相似的特性。对其力学性能的研究将为设计具有新型网络结构的合成水凝胶提供有用的信息。在这项研究中选择了眼镜片。牛眼镜片的各向异性力学性能是使用CRT在一定长度范围内测量的。在宏观长度尺度上,确定晶状体的核和皮质的E分别约为11.8和0.8kPa。我们还在单个细胞的长度尺度上测量了晶状体的机械性能,这表明,相对于大量测量的核和皮质,刚度明显降低。另外,在空腔的生长过程中,观察到了皮质中各向异性的传播,而在原子核中,则是各向同性的。我们进一步探讨了腔体变形的弹性,显示了在核中发生了弹性变形和非弹性变形,而在皮质中的变形具有弹性和可逆性,两者具有相等的贡献。最后,我们用硫醇-降冰片烯化学研究了聚合物网络的粘合性能。探索其可能的应用。这些PDMS网络的机械和粘合性能通过接触粘合力测试(CAT)以及DMA和压缩测量进行了量化。通过CAT测量的这些末端连接的PDMS的E与通过抗压测试测量的E相当。就粘附性能而言,能量释放速率描述为裂纹速度的函数。对于具有相同末端连接化学性质的PDMS,交联之间较高的分子量导致其在一定的裂隙速度范围内具有较高的粘合能。选择比例为18:1的Sylgard PDMS,以比较其机械性能和粘合性能与末端连接的PDMS。在具有相似的杨氏模量和回弹性的情况下,Sylgard PDMS的粘附能与分子量为5 kDa的末端连接的PDMS的粘附能相当,这很可能是由于交联之间的可比分子量所致。

著录项

  • 作者

    Cui, Jun.;

  • 作者单位

    University of Massachusetts Amherst.;

  • 授予单位 University of Massachusetts Amherst.;
  • 学科 Chemistry Polymer.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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