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Updated: Jun 16, 2025

Electrophoretic Crystallization of Ultrathin High-performance Metal-organic Framework Membranes
Published on: August 16, 2018
Crystalline carbon nitride derived self-assembly composite membranes with enhanced self-cleaning performance toward
Yujing Qiu1, Haochen Xu2, Ying Zhou3
1Research and Development Center for Watershed Environmental Eco-Engineering, Advanced Institute of Natural Sciences, Beijing Normal University, Zhuhai, 519087, PR China; School of Environment, Beijing Normal University, Beijing, 100875, PR China.
Abstract:
Membrane technology can realize the sustainable management of textile wastewater through dye/salt separation, but its practical implementation has long been hampered by membrane fouling. This work was to develop a novel carbon nitride based two-dimensional (2D) self-assembled membrane for efficient dye/salt separation with excellent photocatalytic self-cleaning performance toward azo dyes (e.g., methyl blue), anthraquinone dyes (e.g., reactive blue 19) and natural organic matters (e.g., humic acid). Specifically, conventional graphite carbon nitride (g-C3N4), poly triazine imide (PTI) and the composites of iron oxide doped PTI (PTI-Fe2O3) were comparatively investigated for manipulating the lamellar self-catalytic membrane through facile vacuum filtration. The considerable separation factors of sodium chloride to methyl blue (Ssalt/dye) of 76.97, 80.72, and 74.33 were obtained by g-C3N4, PTI, and PTI-Fe2O3, respectively. The generation of radicals and non-radicals were triggered by light irradiation and was accelerated by PTI compared to g-C3N4, resulting in the better flux recovery rate (FRR) of 95.7 % for PTI membrane than that of g-C3N4 membrane (74.4 %). Besides, the introduction of iron oxide enables the enhanced self-cleaning performance by coupling photocatalytic and Fenton-like process, leading to the highest FRR value of 99.4 %. Meanwhile, the fabricated membranes demonstrate remarkable stability (FRR ≥ 80 %) during prolonged operation (64 h) to both simulated and real textile wastewater, indicating that it can a promising alternative membrane material for textile wastewater management.

