Zhou, K.-G., Vasu, K. S., Cherian, C. T. et al. (14 more authors) (2018) Electrically controlled water permeation through graphene oxide membranes. Nature. pp. 236-240. ISSN 0028-0836
Abstract
Controlled transport of water molecules through membranes and capillaries is important in areas as diverse as water purification and healthcare technologies 1-7 . Previous attempts to control water permeation through membranes (mainly polymeric ones) have concentrated on modulating the structure of the membrane and the physicochemical properties of its surface by varying the pH, temperature or ionic strength 3,8 . Electrical control over water transport is an attractive alternative; however, theory and simulations 9-14 have often yielded conflicting results, from freezing of water molecules to melting of ice 14-16 under an applied electric field. Here we report electrically controlled water permeation through micrometre-thick graphene oxide membranes 17-21 . Such membranes have previously been shown to exhibit ultrafast permeation of water 17,22 and molecular sieving properties 18,21 , with the potential for industrial-scale production. To achieve electrical control over water permeation, we create conductive filaments in the graphene oxide membranes via controllable electrical breakdown. The electric field that concentrates around these current-carrying filaments ionizes water molecules inside graphene capillaries within the graphene oxide membranes, which impedes water transport. We thus demonstrate precise control of water permeation, from ultrafast permeation to complete blocking. Our work opens up an avenue for developing smart membrane technologies for artificial biological systems, tissue engineering and filtration.
Metadata
Item Type: | Article |
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Authors/Creators: |
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Copyright, Publisher and Additional Information: | © 2018 Macmillan Publishers Limited, part of Springer Nature. All rights reserved. This is an author-produced version of the published paper. Uploaded in accordance with the publisher’s self-archiving policy. Further copying may not be permitted; contact the publisher for details |
Dates: |
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Institution: | The University of York |
Academic Units: | The University of York > Faculty of Sciences (York) > Physics (York) |
Depositing User: | Pure (York) |
Date Deposited: | 24 May 2018 11:50 |
Last Modified: | 21 Jan 2025 17:33 |
Published Version: | https://doi.org/10.1038/s41586-018-0292-y |
Status: | Published |
Refereed: | Yes |
Identification Number: | 10.1038/s41586-018-0292-y |
Related URLs: | |
Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:131265 |
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