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June 5, 2026Coatings0 citationsOpen Access

Synergistic PEDOT:PSS/Fe-Mn Oxide Functional Coating on PVDF Membrane for Enhanced Arsenate Removal: Surface Properties, Interfacial Adsorption Behavior, and Ligand Exchange Mechanism

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MLMingyu LuoHYHaiyan YangWZWei Zhang

Key Points

  • The aim is to develop a functional coating for a PVDF membrane to enhance arsenate removal efficiency.
  • Applied a Fe-Mn binary oxide and PEDOT:PSS coating to PVDF membrane.
  • Evaluated adsorption capacity, surface properties, and ligand exchange mechanism using dynamic filtration and batch adsorption analyses.
  • Utilized surface-sensitive techniques like zeta potential, XPS, and EXAFS for characterization.
  • Achieved a maximum arsenate adsorption capacity of 30.43 mg/g.
  • Filtration treated 2.70 L of 100 µg/L As(V) solution before exceeding WHO guidelines.
  • Retention of initial capacity was 62.9% after alkaline regeneration.

Abstract

In this study, a functional surface coating composed of Fe-Mn binary oxide (FM) and poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS, PP) was applied to a PVDF membrane (PP-FM-PVDF) for efficient arsenate (As(V)) removal. PP acts as a dispersant and hydrophilic modifier, ensuring uniform FM distribution and reducing the water contact angle to 50.1°. The PP-FM-PVDF membrane achieves a maximum As(V) adsorption capacity of 30.43 mg/g, outperforming pristine and singly modified membranes. The batch adsorption data fit the Langmuir isotherm (R2 = 0.999) and pseudo-second-order kinetic model (R2 = 0.99), indicating monolayer chemisorption. The coating increases the specific surface area to 27.33 m2/g and the tensile strength to 6.41 MPa. Dynamic filtration shows that 2.70 L (2149.7 L/m2) of 100 μg/L As(V) solution can be treated before the permeate concentration exceeds the WHO guideline of 10 μg/L. After alkaline regeneration (pH 11), 62.9% of the initial capacity is retained. Complementary surface-sensitive analyses (zeta potential, XPS, and EXAFS) reveal that arsenate adsorption occurs primarily through ligand exchange between arsenate oxyanions and Fe/Mn surface hydroxyl groups on the coating, forming inner-sphere bidentate complexes (Fe–O–As and Mn–O–As), while electrostatic interactions play a secondary, pH-dependent role. This surface engineering strategy—synergistically integrating a conductive hydrophilic polymer with a metal oxide as a functional coating on PVDF—offers a reusable, high-performance platform for arsenate remediation, underscoring the critical role of interface design in environmental membrane applications.

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Cite This Study

Luo et al. (2026) studied this question.

synapsesocial.com/papers/6a22686b763171746d54712ehttps://doi.org/10.3390/coatings16060671
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