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Gas Separations using Nanoporous Atomically Thin Membranes: Recent Theoretical, Simulation, and Experimental Advances.

Zhe YuanGuangwei HeSylvia Xin LiRahul Prasanna MisraMichael S StranoDaniel Blankschtein
Published in: Advanced materials (Deerfield Beach, Fla.) (2022)
Porous graphene and other atomically thin 2D materials are regarded as highly promising membrane materials for high-performance gas separations due to their atomic thickness, large-scale synthesizability, excellent mechanical strength, and chemical stability. When these atomically thin materials contain a high areal density of gas-sieving nanoscale pores, they can exhibit both high gas permeances and high selectivities, which is beneficial for reducing the cost of gas-separation processes. Here, recent modeling and experimental advances in nanoporous atomically thin membranes for gas separations is discussed. The major challenges involved, including controlling pore size distributions, scaling up the membrane area, and matching theory with experimental results, are also highlighted. Finally, important future directions are proposed for real gas-separation applications of nanoporous atomically thin membranes.
Keyphrases
  • room temperature
  • carbon dioxide
  • metal organic framework
  • optical coherence tomography
  • liquid chromatography
  • capillary electrophoresis
  • atomic force microscopy
  • single molecule
  • electron microscopy