Electrospun tannin-rich nanofibrous solid-state membrane for wastewater environmental monitoring and remediation

Heavy metal, organic dyes, and bacterial contamination in water endanger human/animals’ health, and therefore, the detection, adsorption, and capturing of contaminants are essential for environmental safety. Ligand-rich membranes are promising for sensors, adsorption, and bacterial decontamination....

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Veröffentlicht in:Chemosphere (Oxford) 2022-11, Vol.307, p.135810-135810, Article 135810
Hauptverfasser: Hussain, Zahid, Ullah, Salim, Yan, Jincong, Wang, Zhili, Ullah, Ismat, Ahmad, Zia, Zhang, Ye, Cao, Yi, Wang, Li, Mansoorianfar, Mojtaba, Pei, Renjun
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Sprache:eng
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Zusammenfassung:Heavy metal, organic dyes, and bacterial contamination in water endanger human/animals’ health, and therefore, the detection, adsorption, and capturing of contaminants are essential for environmental safety. Ligand-rich membranes are promising for sensors, adsorption, and bacterial decontamination. Herein, tannin (TA)-reinforced 3-aminopropyltriethoxysilane (APTES) crosslinked polycaprolactone (PCL) based nanofibrous membrane (PCL-TA-APTES) was fabricated via electrospinning. PCL-TA-APTES nanofibers possess superior thermal, mechanical, structural, chemical, and aqueous stability properties than the un-crosslinked membrane. It changed its color from yellowish to black in response to Fe2+/3+ ions due to supramolecular iron-tannin network (FeTA) interaction. Such selective sensing has been noticed after adsorption-desorption cycles. Fe3+ concentration, solution pH, contact time, and ligand concentration influence FeTA coordination. Under optimized conditions followed by image processing, the introduced membrane showed a colorimetric linear relationship against Fe3+ ions (16.58 μM–650 μM) with a limit of detection of 5.47 μM. The PCL-FeTA-APTES membrane could restrain phenolic group oxidation and result in a partial water-insoluble network. The adsorption filtration results showed that the PCL-FeTA-APTES membrane can be reused and had a higher methylene blue adsorption (32.04 mg/g) than the PCL-TA-APTES membrane (14.96 mg/g). The high capture efficiency of nanocomposite against Fe3+-based S. aureus suspension than Fe3+-free suspension demonstrated that Fe3+-bounded bacterium adhered to the nanocomposite through Fe3+/TA-dependent biointerface interactions. Overall, high surface area, rich phenolic ligand, porous microstructure, and super-wetting properties expedite FeTA coordination in the nanocomposite, crucial for Fe2+/3+ ions sensing, methylene blue adsorption-filtration, and capturing of Fe3+-bounded bacterium. These multifunctional properties could promise nanocomposite membrane practicability in wastewater and environmental protection. [Display omitted] •Tannin (TA)-reinforced APTES crosslinked fibers were fabricated via electrospinning.•Fe ions bind to the crosslinked composite membrane due to FeTA complexation.•FeTA membrane adsorbs up to 32.04 mg/g methylene blue dye and can be reused.•Adsorption coupled filtration was more rapid than simple adsorption in removing dye.•Tannin-rich membrane holds a high capture affinity against Fe3+ bounded S.aureus.
ISSN:0045-6535
1879-1298
DOI:10.1016/j.chemosphere.2022.135810