Thermal Protection Materials Branch and ‡AMA, Inc., Thermal Protection Materials Branch, NASA Ames Research Center , Moffett Field, California 94035, United States.
J Phys Chem B. 2017 Apr 6;121(13):2839-2851. doi: 10.1021/acs.jpcb.7b00326. Epub 2017 Mar 28.
Interactions between pre-cured phenolic polymer chains and a solvent have a significant impact on the structure and properties of the final postcured phenolic resin. Developing an understanding of the nature of these interactions is important and will aid in the selection of the proper solvent that will lead to the desired final product. Here, we investigate the role of the phenolic chain structure and the solvent type on the overall solvation performance of the system through molecular dynamics simulations. Two types of solvents are considered: ethylene glycol (EGL) and HO. In addition, three phenolic chain structures are considered, including two novolac-type chains with either an ortho-ortho (OON) or an ortho-para (OPN) backbone network and a resole-type (RES) chain with an ortho-ortho network. Each system is characterized through a structural analysis of the solvation shell and the hydrogen-bonding environment as well as through a quantification of the solvation free energy along with partitioned interaction energies between specific molecular species. The combination of simulations and the analyses indicate that EGL provides a higher solvation free energy than HO due to more energetically favorable hydrophilic interactions as well as favorable hydrophobic interactions between CH element groups. In addition, the phenolic chain structure significantly affects the solvation performance, with OON having limited intermolecular hydrogen-bond formations, while OPN and RES interact more favorably with the solvent molecules. The results suggest that a resole-type phenolic chain with an ortho-para network should have the best solvation performance in EGL, HO, and other similar solvents.
预固化酚醛聚合物链与溶剂之间的相互作用对最终后固化酚醛树脂的结构和性能有重大影响。了解这些相互作用的性质非常重要,这将有助于选择合适的溶剂,从而获得所需的最终产品。在这里,我们通过分子动力学模拟研究了酚醛链结构和溶剂类型对体系整体溶剂化性能的影响。考虑了两种类型的溶剂:乙二醇(EGL)和 HO。此外,还考虑了三种酚醛链结构,包括具有邻-邻(OON)或邻-对(OPN)骨架网络的两种 novolac 型链,以及具有邻-邻网络的 resole 型(RES)链。通过对溶剂化壳层和氢键环境的结构分析,以及对溶剂化自由能以及特定分子物种之间的分区相互作用能的定量,对每个体系进行了表征。模拟和分析的结合表明,EGL 比 HO 提供更高的溶剂化自由能,这是由于更有利的亲水性相互作用以及 CH 元素基团之间有利的疏水性相互作用。此外,酚醛链结构对溶剂化性能有显著影响,OON 具有有限的分子间氢键形成,而 OPN 和 RES 与溶剂分子相互作用更有利。结果表明,具有邻-对网络的 resole 型酚醛链在 EGL、HO 和其他类似溶剂中应具有最佳的溶剂化性能。