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改性聚丙烯酰胺的耐盐性分子设计。

Molecular design of modified polyacrylamide for the salt tolerance.

机构信息

Key Laboratory of Green Chemistry and Technology, Ministry of Education, College of Chemistry, Sichuan University, Chengdu, 610064, China.

出版信息

J Mol Model. 2012 Sep;18(9):4529-45. doi: 10.1007/s00894-012-1447-7. Epub 2012 May 29.

Abstract

In our work, three kinds of functional monomers were selected to modify polyacrylamide (PAM) or partially hydrolyzed polyacrylamide (HPAM) by molecular dynamics simulation so as to achieve the stronger salt-tolerance of modified HM-HPAM. The radius of gyration (R (g)), the hydrodynamic radius (R (H)), the effective length (L (ef)) and the intrinsic viscosity ([η]) for modified PAM or HPAM were studied in aqueous solutions with different ionic strength at 298 K. The results showed that modified HM-HPAM has a stronger salt tolerance and the salt tolerance increases gradually from HM-HPAM1 to HM-HPAM3 because the monomers with different steric hindrance would reduce the curliness of molecular chains and, consequently, improve the salt tolerance. So, introducing the steric hindrance monomer into polymer will increase the salt tolerance of the polymer and it is indicated that the simulated results agree with the experimental results very well. Furthermore, the radial distribution function (RDF) has been used to investigate the effect of NaCl on the hydration of the -COO- groups of the HM-HPAM from microscopic view.

摘要

在我们的工作中,选择了三种功能单体通过分子动力学模拟对聚丙烯酰胺(PAM)或部分水解聚丙烯酰胺(HPAM)进行修饰,从而实现改性 HM-HPAM 更强的耐盐性。在 298 K 下,研究了不同离子强度的水溶液中改性 PAM 或 HPAM 的旋转半径(R(g))、流体力学半径(R(H))、有效长度(L(ef))和特性粘数([η])。结果表明,改性 HM-HPAM 具有更强的耐盐性,并且耐盐性从 HM-HPAM1 逐渐增加到 HM-HPAM3,因为具有不同空间位阻的单体可以降低分子链的卷曲度,从而提高耐盐性。因此,将空间位阻单体引入聚合物中会增加聚合物的耐盐性,模拟结果与实验结果非常吻合。此外,还从微观角度利用径向分布函数(RDF)研究了 NaCl 对 HM-HPAM 中-COO-基团水合作用的影响。

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