Preparation of a hollow fiber composite membrane via synergistic integration of PSS-doped polypyrrole and electrostatic self-assembly
writer:Jianhua Zhang, Yingbo Chen*, Zhuo Wang, Yongxiang Shi, Dengchang Zhu, Guangya Wang, Zongbo Zhang
keywords:Hollow fiber composite membrane; Polypyrrole; PSS doping
source:期刊
specific source:Journal of Water Process Engineering 93 (2026) 110886
Issue time:2026年
Journal of Water Process Engineering 93 (2026) 110886
DOI: 10.1016/j.jwpe.2026.110886
To address the challenge of balancing high dye rejection and high salt permeation in polypyrrole (PPy) composite membranes for dye/salt separation, this study proposes a synergistic regulation strategy combining doping and electrostatic self-assembly to fabricate a multilayer composite membrane. Using a polyethersulfone (PES) hollow fiber membrane as the substrate, the first separation layer was constructed via in-situ polymerization of pyrrole doped with poly (sodium 4-styrenesulfonate) (PSS). Subsequently, a polydiallyldimethylammonium chloride (PDDA) interlayer was introduced by electrostatic self-assembly, followed by a second in-situ polymerization of PSS-doped pyrrole, yielding the PDDA/PSS-PPy2@PES composite membrane. The results show that PSS doping enhances permeate flux, while the introduction of the PDDA interlayer and the second polymerization improves rejection. The electrostatic self-assembly between PDDA and PSS suppresses random aggregation of polypyrrole and promotes the formation of a loose, continuous separation layer. The optimized composite membrane exhibits a pure water permeance of 72.5 L·m?2·h?1·bar?1, and rejection rates of 99.99% for Congo Red (CR), Eriochrome Black T (EBT), and Direct Red 23 (DR23), and 99.27% for Methyl Blue (MB). In the CR/NaCl mixed system, the rejection of CR exceeds 99.99%, while that of NaCl is only 9.4%, demonstrating excellent dye/salt selective separation performance. This work provides a feasible route for tailoring the structure and performance of polypyrrole-based composite membranes via synergistic doping-electrostatic self-assembly, showing promising potential in the treatment of printing and dyeing wastewater and the dyes resource recovery.