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September 12, 2025Industrial & Engineering Chemistry Research3 citationsOpen Access

Pillared and Reduced Graphene Oxide Membranes for Organic Solvent Nanofiltration

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NYNatechanok YutthasaksunthornKZKaung Su Khin ZawSSScott A. Sinquefield

Key Points

  • Pillared and reduced graphene oxide membranes achieve significant enhancements in permeance for organic solvents while maintaining molecular weight cutoffs.
  • In nonpolar solvents, these membranes exhibit 2-fold higher permeances compared to nonpillared variants, specifically in alkanes and aromatics.
  • The study involved chemical reduction of membranes using hydriodic acid, contributing to stable cross-flow operations in diverse solvent environments.
  • Reducing membrane thickness to approximately 70 nm further improved permeance without compromising solute rejection.

Abstract

This work demonstrates the capability of pillared and reduced graphene oxide (GO) membranes to perform organic solvent nanofiltration (OSN) in diverse nonpolar and polar solvents. The effects of pillaring by polyconjugated aromatic compounds (PACs) on solvent flux and molecular weight cutoffs (MWCOs) are investigated. Pyranine/solvent green 7 (SG) and toluidine blue O (TBO) were used as pillaring agents, followed by chemical reduction with hydriodic acid. This fabrication process yielded membranes with a stable cross-flow operation in both polar and nonpolar solvents. Pillared and reduced membranes (rSG-GO and rTBO-GO) exhibited 2-fold higher permeances in nonpolar solvents (C6–C10 alkanes and aromatics) compared to nonpillared membranes, while maintaining MWCOs of 500–600 Da in toluene. The membranes broadly followed a trend of higher permeance with decreasing solvent viscosity but with nuanced deviations based on membrane–solvent interactions. Reducing the thickness to ∼70 nm further enhanced permeance while maintaining rejection of larger solutes.

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Cite This Study

Yutthasaksunthorn et al. (2025) studied this question.

synapsesocial.com/papers/68d44c3431b076d99fa552e2https://doi.org/10.1021/acs.iecr.5c01758
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