Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway

Graphene oxide membranes (GOMs), consisting of graphene oxide (GO) laminar microstructures, offer great potential as nanofiltration membranes due to their unique laminar nanochannelled galleries created between the stacked GO flakes. Recently, GOMs made from smaller GO flakes (S-GOMs) were favored f...

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Main Authors: Kim, Tae-Nam, Lee, Jung-Min, Park, Sung-Gwan, Lee, Jieun, Yang, Euntae, Hwang, Moon-Hyun, Goh, Kunli, Chae, Kyu-Jung
Other Authors: Nanyang Environment and Water Research Institute
Format: Article
Language:English
Published: 2024
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Online Access:https://hdl.handle.net/10356/173294
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spelling sg-ntu-dr.10356-1732942024-01-23T05:45:32Z Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway Kim, Tae-Nam Lee, Jung-Min Park, Sung-Gwan Lee, Jieun Yang, Euntae Hwang, Moon-Hyun Goh, Kunli Chae, Kyu-Jung Nanyang Environment and Water Research Institute Singapore Membrane Technology Centre Engineering::Environmental engineering Graphene Oxide Laminar Microstructure Graphene oxide membranes (GOMs), consisting of graphene oxide (GO) laminar microstructures, offer great potential as nanofiltration membranes due to their unique laminar nanochannelled galleries created between the stacked GO flakes. Recently, GOMs made from smaller GO flakes (S-GOMs) were favored for the reason that the less tortuous transport pathways could render better water permeability. Here, we found that this may not necessarily be true. We designed experiments, which suggested that the interlayer spacing between GO flakes may be a more important factor affecting the water permeability than the tortuosity of the water pathway, especially when the two-dimensional nanochannels were smaller than expected under a pressurized filtration setting. Notably, our results showed that as the GO flakes were fragmented into smaller pieces by high-power probe sonication, they underwent a thermal reduction that decreased the size of the interlayer spacing. Coupled with a less wrinkled microstructure that caused tighter compaction under a 3-bar transmembrane pressure, the overall water transport through the S-GOM was reduced despite a less tortuous pathway that was 2.5 times shorter based on theoretical calculation. This led to S-GOM showing 3.3 times lower water permeability than that of GOM made from large GO flakes. On the whole, our results unveil the interplay between the two most important parameters governing the water permeability of GOMs, which will help researchers with more instructional support when developing better performing GOMs for nanofiltration application. National Research Foundation (NRF) Public Utilities Board (PUB) This research was a part of the project titled 'Development of treatment technology of marine biofouling on ship hull’, funded by the Ministry of Oceans and Fisheries (MOF), Korea (grant number: 20210500). K. G. would also like to thank the National Research Foundation, Singapore, and PUB, under its RIE2025 Urban Solutions and Sustainability (USS) (Water) Centre of Excellence (CoE) Programme which provides funding to the Nanyang Environment & Water Research Institute (NEWRI) of the Nanyang Technological University, Singapore (NTU). 2024-01-23T05:45:32Z 2024-01-23T05:45:32Z 2024 Journal Article Kim, T., Lee, J., Park, S., Lee, J., Yang, E., Hwang, M., Goh, K. & Chae, K. (2024). Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway. Carbon, 216, 118560-. https://dx.doi.org/10.1016/j.carbon.2023.118560 0008-6223 https://hdl.handle.net/10356/173294 10.1016/j.carbon.2023.118560 2-s2.0-85174695273 216 118560 en Carbon © 2023 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Environmental engineering
Graphene Oxide
Laminar Microstructure
spellingShingle Engineering::Environmental engineering
Graphene Oxide
Laminar Microstructure
Kim, Tae-Nam
Lee, Jung-Min
Park, Sung-Gwan
Lee, Jieun
Yang, Euntae
Hwang, Moon-Hyun
Goh, Kunli
Chae, Kyu-Jung
Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
description Graphene oxide membranes (GOMs), consisting of graphene oxide (GO) laminar microstructures, offer great potential as nanofiltration membranes due to their unique laminar nanochannelled galleries created between the stacked GO flakes. Recently, GOMs made from smaller GO flakes (S-GOMs) were favored for the reason that the less tortuous transport pathways could render better water permeability. Here, we found that this may not necessarily be true. We designed experiments, which suggested that the interlayer spacing between GO flakes may be a more important factor affecting the water permeability than the tortuosity of the water pathway, especially when the two-dimensional nanochannels were smaller than expected under a pressurized filtration setting. Notably, our results showed that as the GO flakes were fragmented into smaller pieces by high-power probe sonication, they underwent a thermal reduction that decreased the size of the interlayer spacing. Coupled with a less wrinkled microstructure that caused tighter compaction under a 3-bar transmembrane pressure, the overall water transport through the S-GOM was reduced despite a less tortuous pathway that was 2.5 times shorter based on theoretical calculation. This led to S-GOM showing 3.3 times lower water permeability than that of GOM made from large GO flakes. On the whole, our results unveil the interplay between the two most important parameters governing the water permeability of GOMs, which will help researchers with more instructional support when developing better performing GOMs for nanofiltration application.
author2 Nanyang Environment and Water Research Institute
author_facet Nanyang Environment and Water Research Institute
Kim, Tae-Nam
Lee, Jung-Min
Park, Sung-Gwan
Lee, Jieun
Yang, Euntae
Hwang, Moon-Hyun
Goh, Kunli
Chae, Kyu-Jung
format Article
author Kim, Tae-Nam
Lee, Jung-Min
Park, Sung-Gwan
Lee, Jieun
Yang, Euntae
Hwang, Moon-Hyun
Goh, Kunli
Chae, Kyu-Jung
author_sort Kim, Tae-Nam
title Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
title_short Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
title_full Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
title_fullStr Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
title_full_unstemmed Size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
title_sort size-dependent water transport in laminar graphene oxide membranes: an interplay between interlayer spacing versus tortuosity of transport pathway
publishDate 2024
url https://hdl.handle.net/10356/173294
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