Enhancing Separation Performance of PA Nanofiltration Membrane Through Polyelectrolyte PSS Interlayer and Surface Modification

dc.contributor.authorZafeiropoulou, Georgia
dc.contributor.authorChrissopoulou, Kiriaki
dc.contributor.authorZuburtikudis, Ioannis
dc.contributor.authoretal..
dc.date.accessioned2026-07-07T09:20:56Z
dc.date.available2026-07-07T09:20:56Z
dc.date.issued2026
dc.descriptionHaving access to clean water is becoming increasingly difficult due to severe water pollution and water shortages [1,2,3]. In this context, nanofiltration (NF) is emerging as an efficient method for water reclamation and purification. Specifically, due to its low operating pressure, high permeability and ability to separate mostly divalent ions and organic pollutants, NF has been applied for water-based purifications and resource recovery [4,5,6,7,8,9]. State-of-the-art NF membranes exhibit a thin-film composite (TFC) morphology, which consists of a porous support and a thin rejection polyamide (PA) layer. The most common method for the synthesis of the thin PA layer (~100 nm) is via interfacial polymerization (IP) between an amine monomer (e.g., piperazine, PIP) and trimesoyl chloride (TMC) [10,11].
dc.description.abstractThin-film composite (TFC) polyamide (PA) nanofiltration membranes are the state of the art for water purification and reclamation, although a selectivity–permeability trade-off often restricts their development. To mitigate this problem, in this work, a novel three-layer structured nanofiltration (NF) membrane was fabricated consisting of a negatively charged poly (sodium 4-styrenesulfonate) (PSS) interlayer, a high-performance polyethyleneimine (PEI)-based PA separation layer and a PEI-grafted top layer. The PSS interlayer aimed to regulate interfacial polymerization (IP) of PEI with trimesoyl chloride (TMC) and enhance water transport, while PEI-grafting ensured high salt rejections. The relevant characterizations indicated that PEI-grafting endowed the resulting membrane (I-TFC-g) with a positive surface charge and increased the crosslinking degree to achieve much higher rejections for Mg+2 ions through the synergistic effect of Donnan and size-exclusion mechanisms, while the incorporation of the PSS interlayer resulted in an increased pure-water permeability (PWP) value of 7 L m−2 h−1 bar−1 (a value 2.8 times higher compared to the membrane TFC-g without a PSS interlayer). In specific, the I-TFC-g membrane displayed the highest salt rejections of 91% for MgCl2, 92% for MgSO4, 73% for Na2SO4 and 58% for NaCl and a good long-term stability. Overall, this work presents a simple strategy to improve NF performance by simultaneous enhancement of water permeability and salt selectivity. Keywords: nanofiltration, salt rejection, TFC membrane, water permeability, Chlorite minerals, Composite films, Composite membranes, Grafting (chemical), Nanofiltration membranes, High salts, Poly(ethyleneimine), Poly (sodium 4-styrenesulfonate), Polyamide nanofiltration membranes,Polysodium 4-styrenesulfonate, Salt rejections.
dc.identifier.citationPanagiotou, F., Zafeiropoulou, G., Gojda, F., Chrissopoulou, K., Zuburtikudis, I., & Deimede, V. (2026). Enhancing Separation Performance of PA Nanofiltration Membrane Through Polyelectrolyte PSS Interlayer and Surface Modification. Polymers, 18(10), 1242.
dc.identifier.doihttps://doi.org/10.3390/polym18101242
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/8340
dc.language.isoen
dc.publisherMultidisciplinary Digital Publishing Institute (MDPI)
dc.titleEnhancing Separation Performance of PA Nanofiltration Membrane Through Polyelectrolyte PSS Interlayer and Surface Modification
dc.typeArticle

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