Two-dimensional confined channels with high-density hydrophilic microregions for enhanced selective water transport

Liheng Dai, Zhaodi Xiong, Weiyi Xu, Kai Qu, Yixing Wang, Shuyun Gu, Hongyan Cao, Ying Yu, Linfeng Lei, Siyao Li, Kang Huang, Xuhong Guo, Zhi Xu

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

Two-dimensional (2D) membranes represented by graphene oxide (GO) exhibit great potential in developing high-performance separation membranes. However, insufficient interlayer chemical microenvironment and unstable laminar structure are still huge challenge to achieve high-efficiency water-selective transport. Herein, we construct high-density hydrophilic microregions in GO membrane through introducing sodium polystyrene sulfonate (PSSNa) with abundant ionized sulfonate groups to provide good hydrophilic chemical microenvironment, further facilitating fast water-selective permeation. Meanwhile, the obtained well-stacked lamina structure driven by self-assembly between PSSNa and GO nanosheets conduce to achieve superior separation of water-butanol mixture through strict size sieving effect. Consequently, the as-prepared PSSNa/GO membrane on polyethersulfone (PES) substrate exhibit excellent separation performance with flux of 5.28 kg m −2 h −1 and excellent separation factor of 3487 for water/butanol at 343 K, representing the state-of-the-art selective separation membranes. This strategy provides new insight to finely construct better chemical microenvironment in 2D confined channels for precise and high-efficiency aqueous molecular separation process.

Original languageEnglish
Article number121398
JournalJournal of Membrane Science
Volume671
DOIs
StatePublished - 5 Apr 2023

Keywords

  • Confined mass transfer
  • Graphene oxide
  • Hydrophilic microregion
  • Two-dimensional membrane
  • Water-selective transport

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