Wood-Supported cationic polyelectrolyte membranes from a reactive ionic liquid for water detoxification

被引:0
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作者
Ahmed, Muzamil Jalil [1 ,2 ]
Sanchez-Ferrer, Antoni [1 ]
机构
[1] Tech Univ Munich, Wood Res Inst Munich HFM, Wood Mat Sci, Winzererstr 45, D-80797 Munich, Germany
[2] NED Univ Engn & Technol, Thin Film Lab, Adv Mat & Sustainable Environm AMSE Grp, Main Campus,Univ Rd, Karachi 75270, Sindh, Pakistan
关键词
Reactive ionic liquids; Glycidyltriethylammonium chloride; Wood Quaternisation; Cationic polyelectrolytes; Water Treatment; EXCHANGE MEMBRANES; PHOSPHATE; REMOVAL; NITRATE; AMMONIUM; SULFATE; DEPOSITION; TRANSPORT; CELLULOSE; HYDRATION;
D O I
10.1016/j.cej.2024.158841
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Quaternised Wood Membranes (QWMs) are gaining prominence as cost-effective, sustainable alternatives for water detoxification, particularly the removal of hazardous oxoanions such as nitrate (NO3-), sulfate (SO42-), and phosphate (PO43-). Pinewood has been quaternised using a polyelectrolyte-forming reactive ionic liquid (RIL), i. e., glycidyl triethylammonium chloride (GTEAC), in a water-free, one-step method. The optimised modification process at 90 degrees C and for 1.5 h results in a substantial increase in the oxoanion removal efficiencies of the QWMs, with the most effective removal being achieved for SO42-, followed by PO4 3- and NO3-. The GTEAC can polymerise to yield long-chain cationic polyelectrolytes, which corroborates with a model synthetic study, the 1D and 2D NMR spectra, and the DSC and TGA/DTG thermal analyses. This grafted polyelectrolyte yields a high weight gain wg = 40% and the corresponding degree of quaternisation of DQ = 2.08 mmol/g, though screening effects yield a maximum ion exchange capacity of IECmax = 1.07 mmol/g. Additionally, the regeneration is feasible after several filtration cycles and the QWM can withstand sufficient stress under operation conditions. Further, isothermal analyses indicate a Langmuir behaviour and Freundlich-like behaviour under equilibrium (zero flow) and flow conditions, respectively. This study highlights the potential of QWMs as a sustainable and cost-effective alternative to synthetic polymeric membranes in water treatment technologies for denitrification, desulfurisation, dephosphatisation and/or ultrafiltration applications. The process sustainability was quantified using the EcoScale approach of up to 73.6 (near excellent), yielding wood-based AEMs costing 50-60 times less than their synthetic polymeric peers.
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页数:16
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