Study of the effects of water content and temperature on polyacrylamide/polyvinyl alcohol interpenetrating network hydrogel performance by a molecular dynamics method

聚乙烯醇 氢键 聚丙烯酰胺 分子动力学 材料科学 自愈水凝胶 乙烯醇 相互作用能 化学工程 径向分布函数 复合数 含水量 结合能 分子 复合材料 聚合物 高分子化学 化学 计算化学 有机化学 岩土工程 工程类 物理 核物理学
作者
Qinghua Wei,Yingfeng Zhang,Yanen Wang,Weihong Chai,Mingming Yang,Wenxiao Zeng,Meng Wang
出处
期刊:E-polymers [De Gruyter]
卷期号:15 (5): 301-309 被引量:23
标识
DOI:10.1515/epoly-2015-0087
摘要

Abstract An investigation of the molecular interaction within a hydrogel system was conducted using molecular dynamics simulation, and the interaction mechanism of a polyacrylamide/polyvinyl alcohol (PAM/PVA) hydrogel system was examined specifically at the molecular level. Several characteristics of the PAM/PVA composite hydrogel system that are largely dependent on water content and temperature were studied in this paper, such as cohesive energy density, binding energy, mechanical properties and pair correlation function. The cohesive energy density and binding energy of the hydrogel system increased with higher water content. Results also showed that increased temperatures led to a decrease in the cohesive energy density of the system, while binding energy remained unchanged. The mechanical properties of the system were evaluated by analyzing the static mechanic performance. Results showed that elastic coefficients, engineering modulus and ductility decreased with increasing water content and temperature. In addition, analysis of the pair correlation function revealed mainly hydrogen bonding interactions between H 2 O molecules and surrounding atoms or functional groups. Results also indicated that the strength of these hydrogen bonds was O water >O PVA >O PAM >N PAM , confirming both the potential and the difficulty of hydrogen bond formation. The aforementioned findings help in understanding the interaction mechanisms between the components of a hydrogel system and in demonstrating the effects of water content and temperature on the PAM/PVA hydrogel system, which provides useful information on the possible operating windows of a biomedical hydrogel-making process.

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