4.7 Article

Effects of Protonation, Hydroxylamination, and Hydrazination of g-C3N4 on the Performance of Matrimid®/g-C3N4 Membranes

Journal

NANOMATERIALS
Volume 8, Issue 12, Pages -

Publisher

MDPI
DOI: 10.3390/nano8121010

Keywords

carbon nitride; CO2/CH4; gas separation; Matrimid (R) 5218; mixed matrix membrane; O-2/N-2

Funding

  1. European Union [LIFE15-ENV/ES/000284]
  2. Spanish MINECO [MAT2016-76413-C2-R1, MAT2016-76413-C2-R2]
  3. LIFE+ AMMONIA TRAPPING project [LIFE15-ENV/ES/000284]

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One of the challenges to continue improving polymeric membranes properties involves the development of novel chemically modified fillers, such as nitrogen-rich 2-D nanomaterials. Graphitic carbon nitride (g-C3N4) has attracted significant interest as a new class of these fillers. Protonation is known to afford it desirable functionalities to form unique architectures for various applications. In the work presented herein, doping of Matrimid (R) with protonated g-C3N4 to yield Matrimid (R)/g-C3N4 mixed matrix membranes was found to improve gas separation by enhancing the selectivity for CO2/CH4 by up to 36.9% at 0.5 wt % filler doping. With a view to further enhancing the contribution of g-C3N4 to the performance of the composite membrane, oxygen plasma and hydrazine monohydrate treatments were also assayed as alternatives to protonation. Hydroxylamination by oxygen plasma treatment increased the selectivity for CO2/CH4 by up to 52.2% (at 2 wt % doping) and that for O-2/N-2 by up to 26.3% (at 0.5 wt % doping). Hydrazination led to lower enhancements in CO2/CH4 separation, by up to 11.4%. This study suggests that chemically-modified g-C3N4 may hold promise as an additive for modifying the surface of Matrimid (R) and other membranes.

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