4.8 Article

Rapid Water Permeation Through Carbon Nanomembranes with Sub-Nanometer Channels

Journal

ACS NANO
Volume 12, Issue 5, Pages 4695-4701

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.8b01266

Keywords

membrane separation; 2D material; water purification; sub-nanometer channels; self-assembled monolayer

Funding

  1. German Federal Ministry of Education and Research (BMBF) within the M-Era.net Program [MOLFIL-CNM 03X0158A]
  2. Deutsche Forschungsgemeinschaft [DA 370/8-1]

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The provision of clean water is a global challenge, and membrane filtration is a key technology to address it. Conventional filtration membranes are constrained by a trade-off between permeance and selectivity. Recently, some nanostructured membranes demonstrated the ability to overcome this limitation by utilizing well-defined carbon nanoconduits that allow a coordinated passage of water molecules. The fabrication of these materials is still very challenging, but their performance inspires research toward nanofabricated membranes. This study reports on molecularly thin membranes with subnanometer channels that combine high water selectivity with an exceptionally high permeance. Carbon nanomembranes (CNMs) of similar to 1.2 nm thickness are fabricated terphenylthiol (TPT) monolayers. Scanning probe microscopy and transport measurements reveal that TPT CNMs consist of a dense network of sub-nanometer channels that efficiently block the passage of most gases and liquids. However, water passes through with an extremely high permeance of similar to 1.1 x 10(-4) mol.m(-2).s(-l)Pa(-1), as does helium, but with a 2500 times lower flux. Assuming all channels in a TPT CNM are active in mass transport, we find a single-channel permeation of 66 water molecules s(-l).Pa-1. This suggests that water molecules translocate fast and cooperatively through the subnanometer channels, similar to carbon nanotubes and membrane proteins (aquaporins). CNMs are thus scalable two-dimensional sieves that can be utilized toward energy-efficient water purification.

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