Jahangirzadeh Mostafa, Bajgiran Negin Karimzadeh, Majidi Sima, Azamat Jafar, Erfan-Niya Hamid
Faculty of Chemical and Petroleum Engineering, University of Tabriz, 51666-16471, Tabriz, Iran.
Faculty of Chemical and Petroleum Engineering, University of Tabriz, 51666-16471, Tabriz, Iran.
J Mol Graph Model. 2024 Nov;132:108833. doi: 10.1016/j.jmgm.2024.108833. Epub 2024 Jul 17.
Molecular dynamics (MD) simulations are conducted to assess pristine graphenylene membranes' effectiveness in seawater desalination, explicitly focusing on their salt rejection and water permeability capabilities. This study investigates the potential of the graphenylene for separation of the Na as monovalent cation, in order to evaluate its further application for separation of the other type of contaminants. To this end, the pristine graphenylene nanosheet is introduced into the simulation box which included the water molecules, sodium and chlorine ions. Subsequently, MD simulations were conducted by applying different amounts of external pressures in which the temperature changes are investigated as another effective parameter in water permeability and salt rejection properties. Furthermore, the water density map, radial distribution functions, and water density elucidate the performance of the considered membrane in the presence of water molecules, Na ions, and Cl ions. The optimum performance of the pristine graphenylene for seawater desalination is achieved at P = 400 MPa and T = 298 K that results in the water flux of 2920 L/m h bar and 98.8 % salt rejection. The pristine graphenylene nanosheet shows significant potential in effectively separating salt ions, which has elucidated its importance and subsequently, the functionalized membrane for this application.
进行分子动力学(MD)模拟以评估原始亚苯基膜在海水淡化中的有效性,特别关注其对盐分的截留和水渗透能力。本研究探究了亚苯基对单价阳离子钠的分离潜力,以便评估其在分离其他类型污染物方面的进一步应用。为此,将原始亚苯基纳米片引入包含水分子、钠离子和氯离子的模拟盒中。随后,通过施加不同量的外部压力进行MD模拟,其中温度变化作为水渗透和盐分截留特性的另一个有效参数进行研究。此外,水密度图、径向分布函数和水密度阐明了所考虑的膜在存在水分子、钠离子和氯离子时的性能。原始亚苯基在海水淡化方面的最佳性能在P = 400 MPa和T = 298 K时实现,此时水通量为2920 L/m h bar,盐分截留率为98.8%。原始亚苯基纳米片在有效分离盐离子方面显示出巨大潜力,这阐明了其重要性以及随后用于此应用的功能化膜的重要性。