Quantized Water Transport: Ideal Desalination through Graphyne-4 Membrane

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Abstract

Graphyne sheet exhibits promising potential for nanoscale desalination to achieve both high water permeability and salt rejection rate. Extensive molecular dynamics simulations on pore-size effects suggest that γ-graphyne-4, with 4 acetylene bonds between two adjacent phenyl rings, has the best performance with 100% salt rejection and an unprecedented water permeability, to our knowledge, of ∼13â€...L/cm 2 /day/MPa, 3 orders of magnitude higher than prevailing commercial membranes based on reverse osmosis, and ∼10 times higher than the state-of-the-art nanoporous graphene. Strikingly, water permeability across graphyne exhibits unexpected nonlinear dependence on the pore size. This counter-intuitive behavior is attributed to the quantized nature of water flow at the nanoscale, which has wide implications in controlling nanoscale water transport and designing highly effective membranes.

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Zhu, C., Li, H., Zeng, X. C., Wang, E. G., & Meng, S. (2013). Quantized Water Transport: Ideal Desalination through Graphyne-4 Membrane. Scientific Reports, 3. https://doi.org/10.1038/srep03163

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