Two-Dimensional Materials for Selective Ion Transport Membrane: Synthesis and Application Advances

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Abstract

Membrane innovations have become a key solution for overcoming the bottlenecks in efficiency upgrade in many green energy fields. Membrane performance depends on two key parameters permeability and selectivity, which typically follow a trade-off relationship: improving one often diminishes the other. Two-dimensional (2D) materials, which have atomic-level thickness, tunable pore sizes, and reasonable functionalization, offer great promises to break through the trade-off effect and redesign high-efficiency mass transfer pathways. This review systematically presents recent efforts in both preparation and potential applications of 2D materials for overcoming the permeability–selectivity trade-off. It highlights four prevailing fabrication strategies: chemical vapor deposition, interfacial synthesis, solution-phase synthesis, and exfoliation, and shows some major optimization techniques for various 2D materials. Additionally, this review discusses emerging applications of 2D materials across critical fields from water treatment (seawater desalination, metal ion extraction) to energy technologies (osmotic power generation, direct methanol fuel cells, and vanadium redox flow batteries). Finally, the challenges and future prospects of 2D materials in ion separation and energy conversion are discussed.

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APA

Jiang, Z., Zhang, S., Xu, J., Liu, Y., Zhang, Y., Liu, J., & Zuo, Z. (2025, October 1). Two-Dimensional Materials for Selective Ion Transport Membrane: Synthesis and Application Advances. Colloids and Interfaces. Multidisciplinary Digital Publishing Institute (MDPI). https://doi.org/10.3390/colloids9050063

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