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影响高分子微球复合水凝胶力学性能的相互作用。

Interactions affecting the mechanical properties of macromolecular microsphere composite hydrogels.

机构信息

Beijing Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, Beijing Normal University , Beijing 100875, People's Republic of China.

出版信息

J Phys Chem B. 2013 Oct 31;117(43):13679-87. doi: 10.1021/jp4069587. Epub 2013 Oct 18.

Abstract

Macromolecular microsphere composite (MMC) hydrogel is a kind of tough hydrogel fabricated by using peroxidized macromolecular microspheres as polyfunctional initiating and cross-linking centers (PFICC). The contribution of chemical cross-linking (covalent bonding) and physical cross-linking (chain entanglement and hydrogen bonding) to the mechanical properties are understood by testing the hydrogels, which were swollen in water or aqueous urea solutions to different water contents. The as-prepared MMC gels exhibited moderate moduli (60-270 kPa), high fracture tensile stresses (up to 0.54 MPa), high extensibilities (up to 2500%), and high fracture energies (270-770 J m(-2)). The moduli of the swollen gels decrease dramatically, but there are no significant changes in fracture tensile strength and fracture strain, even slight increases. More interestingly, the swollen gels show much-enhanced fracture energies, higher than 2000 J m(-2). A gradual decrease in the hysteresis ratio and residual strain is also found in the cyclic tensile testing of the hydrogels that were swollen to different water contents. The covalent bonding determines the tensile strength and fracture energy of the MMC gels, whereas the physical entanglement and hydrogen bonding among the polymer chains contributes mainly to the modulus of the MMC gels, and they are also the main reason for the presence of hysteresis in the loading-unloading cycles.

摘要

高分子微球复合(MMC)水凝胶是一种坚韧的水凝胶,由过氧化物高分子微球作为多功能引发和交联中心(PFICC)制备而成。通过测试在水或水合尿素溶液中溶胀到不同含水量的水凝胶,可以了解化学交联(共价键合)和物理交联(链缠结和氢键)对机械性能的贡献。所制备的 MMC 凝胶表现出适中的模量(60-270 kPa)、高断裂拉伸应力(高达 0.54 MPa)、高伸长率(高达 2500%)和高断裂能(270-770 J m(-2))。溶胀凝胶的模量显著降低,但断裂拉伸强度和断裂应变没有明显变化,甚至略有增加。更有趣的是,溶胀凝胶显示出增强的断裂能,高于 2000 J m(-2)。在对溶胀到不同含水量的水凝胶进行的循环拉伸测试中,还发现滞后比和残余应变逐渐减小。共价键合决定了 MMC 凝胶的拉伸强度和断裂能,而聚合物链之间的物理缠结和氢键主要贡献于 MMC 凝胶的模量,它们也是在加载-卸载循环中存在滞后的主要原因。

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