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Tailoring Dense Polyester Nanofiltration Membranes for Selective Mineral Retention in Health-Oriented Potable Water
Jiulong Yin1,2, QingNan Ouyang1, Na Li3
1Key Laboratory of New Membrane Materials, Ministry of Industry and Information Technology, School of Environmental and Biological Engineering, Nanjing University of Science & Technology, Nanjing 210094, China.
None:
Retaining essential minerals (e.g., Ca2+, Mg2+) is critical for generating healthy, palatable water. However, conventional polyamide nanofiltration (NF) membranes suffer from excessive mineral salt rejection, chlorine susceptibility, and scaling. Although polyester NF membranes are inherently chlorine-resistant, they lack the precise selectivity required for safe, mineral-rich potable water, limiting their application in drinking water treatment. Herein, we developed a high-selectivity dense polyester NF membrane using 3,5-dihydroxybenzoic acid (DHBA) as an aqueous monomer and incorporated sodium dodecyl sulfate (SDS) to assist interfacial polymerization by enhancing trans-interface reactant diffusion, creating membranes with a uniform pore size distribution. By tuning the SDS concentration, the optimal polyester membrane (SAIP-DHBA-0.125) achieved a water permeance of 8.3 L m-2 h-1 bar-1, superior water/Na2SO4 and CaCl2/Na2SO4 selectivities (42.7 and 177.7, respectively), and enhanced antiscaling and chlorine resistance, surpassing reported polyester membranes, most lab-made polyamide NF membranes, and a commercial nanofiltration membrane (NF270, Dupont). When applied to real tap water with high hardness, the SAIP-DHBA-0.125 membrane produced a high-quality permeate that complies with the Standards for Healthy Drinking Water Quality (T/BJWA 001-2021), while retaining essential minerals (Ca2+: 37.6 mg L-1, Mg2+: 56.3 mg L-1), approximately 55% higher than the NF270 membrane. Moreover, it maintained ∼96.0% of its initial flux and stable total dissolved solids rejection during 96 h of operation, underscoring its potential for the sustainable production of health-oriented potable water.
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