Multilayer graphene oxide-based membranes for reverse osmosis water desalination: An atomistically detailed simulation study

dc.contributor.authorZuburtikudis, Ioannis
dc.contributor.authorAbu Khalifeh, Hadil
dc.contributor.authorFanourgakis, George
dc.contributor.authorKaratasos, Kostas
dc.date.accessioned2024-05-07T08:08:03Z
dc.date.available2024-05-07T08:08:03Z
dc.date.issued2023-10
dc.descriptionone of the most promising methods to alleviate the fresh water shortage is desalination [1], as it can provide a sustainable water supply beyond the resources offered by the hydrological cycle [2]. Conventional water treatment technologies require significant energy consumption while performing in suboptimal levels in removing salt ions or other volatile organic pollutants [3], [4]. Among different water treatment methods, membrane-based filtration processes can play a crucial role in water purification and desalination, since they are energy efficient, easy to implement and are based on environmentally friendly operating conditions [5]. Particularly for desalination purposes, carbon compounds such as graphene and its derivatives, have emerged as promising materials for the fabrication of nanocomposite membranes [6], [7], [8], [9]. The development of efficient synthetic protocols for their large-scale production [10] and the ability of such compounds to improve key membrane properties such as their mechanical strength, thermal stability and chemical inertness [11], [12] have placed them under the focus of the scientific and the industrial community.
dc.description.abstractPressure-driven Molecular Dynamics simulations were employed to examine reverse osmosis desalination through graphene-oxide-based multilayered membranes. The effects of functionalization of the graphene-oxide flakes with poly(ethylene imine) branches in water permeability and salt rejection were described in detail. The role of the degree of structural rigidity of the membranes was also explored. A lower degree of rigidity of the membrane resulted in a 6–9 % increase in water permeability depending on the state of functionalization of the flakes. At constant membrane rigidity, functionalization of the membranes’ flakes led to approximately 30 % reduction in water permeability, but the water flux remained 2–3 orders of magnitude higher than that of conventional reverse-osmosis membranes. Moreover, functionalization of the membranes’ flakes resulted in a higher than 20 % enhancement in salt rejection at a pressure difference similar to that in actual reverse osmosis processes. Examination of the swelling behavior of the membranes showed that those based on the functionalized flakes exhibit a tendency to remain structurally coherent with an interlayer separation determined by the presence of the polymer branches. Description of the microscopic mechanisms related to the membranes’ water and ion flux, such as hydrogen bonding and concentration polarization, allowed the assessment of the contribution of different factors involved in desalination, providing new insight towards the fabrication of membranes with improved performance. Keywords: Non-equilibrium molecular dynamics, Multilayered membranes, Functionalized graphene oxide, Poly(ethyleneimine)Reverse osmosis, Desalination
dc.identifier.citationKaratasos, K., Fanourgakis, G. S., Zuburtikudis, I., & Khalifeh, H. A. (2023). Multilayer graphene oxide-based membranes for reverse osmosis water desalination: An atomistically detailed simulation study. Journal of Environmental Chemical Engineering, 11(5), 110550.
dc.identifier.doihttps://doi.org/10.1016/j.jece.2023.110550
dc.identifier.urihttps://dspace.adu.ac.ae/handle/1/5265
dc.language.isoen
dc.publisherScience Direct
dc.titleMultilayer graphene oxide-based membranes for reverse osmosis water desalination: An atomistically detailed simulation study
dc.typeArticle

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