Surface Charge-Dependent Transport of Water in Graphene Nano-Channels
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Date
2018
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Springer Verlag
Open Access Color
BRONZE
Green Open Access
Yes
OpenAIRE Downloads
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Publicly Funded
No
Abstract
Deionized water flow through positively charged graphene nano-channels is investigated using molecular dynamics simulations as a function of the surface charge density. Due to the net electric charge, Ewald summation algorithm cannot be used for modeling long-range Coulomb interactions. Instead, the cutoff distance used for Coulomb forces is systematically increased until the density distribution and orientation of water atoms converged to a unified profile. Liquid density near the walls increases with increased surface charge density, and the water molecules reorient their dipoles with oxygen atoms facing the positively charged surfaces. This effect weakens away from the charged surfaces. Force-driven water flows in graphene nano-channels exhibit slip lengths over 60 nm, which result in plug-like velocity profiles in sufficiently small nano-channels. With increased surface charge density, the slip length decreases and the apparent viscosity of water increases, leading to parabolic velocity profiles and decreased flow rates. Results of this study are relevant for water desalination applications, where optimization of the surface charge for ion removal with maximum flow rate is desired.
Description
Keywords
Deionized water, Molecular dynamics simulations, Slip length, Surface charge density, Viscosity, Molecular dynamics simulations, Viscosity, Surface charge density, MD simulation of electrically charged systems, Deionized water, Slip length
Fields of Science
02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences
Citation
Çelebi, A. T., Barışık, M., and Beşkök, A. (2018). Surface charge-dependent transport of water in graphene nano-channels. Microfluidics and Nanofluidics, 22(1). doi:10.1007/s10404-017-2027-z
WoS Q
Q2
Scopus Q
Q2

OpenCitations Citation Count
42
Source
Microfluidics and Nanofluidics
Volume
22
Issue
1
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End Page
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CrossRef : 21
Scopus : 46
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Mendeley Readers : 35
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46
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Web of Science™ Citations
47
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912
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Downloads
579
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