Radosinski Lukasz, Labus Karolina
Division of Bioprocess and Biomedical Engineering, Faculty of Chemistry, Wroclaw University of Science and Technology, Norwida 4/6, 50-370, Wroclaw, Poland.
J Mol Model. 2017 Oct 5;23(11):305. doi: 10.1007/s00894-017-3472-z.
Polyvinyl alcohol (PVA) is a material with a variety of applications in separation, biotechnology, and biomedicine. Using combined Monte Carlo and molecular dynamics techniques, we present an extensive comparative study of second- and third-generation force fields Universal, COMPASS, COMPASS II, PCFF, and the newly developed INTERFACE, as applied to this system. In particular, we show that an INTERFACE force field provides a possibility of composing a reliable atomistic model to reproduce density change of PVA matrix in a narrow temperature range (298-348 K) and calculate a thermal expansion coefficient with reasonable accuracy. Thus, the INTERFACE force field may be used to predict mechanical properties of the PVA system, being a scaffold for hydrogels, with much greater accuracy than latter approaches. Graphical abstract Molecular Dynamics and Monte Carlo studies indicate that it is possible to predict properties of the PVA in narrow temperature range by using the INTERFACE force field.
聚乙烯醇(PVA)是一种在分离、生物技术和生物医学等领域有多种应用的材料。我们运用蒙特卡罗和分子动力学相结合的技术,对第二代和第三代力场——通用力场、COMPASS力场、COMPASS II力场、PCFF力场以及新开发的INTERFACE力场——应用于该体系进行了广泛的比较研究。特别地,我们表明INTERFACE力场提供了构建可靠原子模型的可能性,以再现PVA基质在较窄温度范围(298 - 348K)内的密度变化,并以合理的精度计算热膨胀系数。因此,INTERFACE力场可用于预测PVA体系的力学性能,作为水凝胶的支架,其精度比后几种方法高得多。图形摘要 分子动力学和蒙特卡罗研究表明,通过使用INTERFACE力场可以在较窄温度范围内预测PVA的性能。