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dc.contributor.author Long, T
dc.contributor.author Wu, H
dc.contributor.author Yu, H
dc.contributor.author Thushara, D
dc.contributor.author Bao, B
dc.contributor.author Zhao, S
dc.contributor.author Liu, H
dc.date.accessioned 2023-03-22T05:53:41Z
dc.date.available 2023-03-22T05:53:41Z
dc.date.issued 2020
dc.identifier.citation Long, T., Wu, H., Yu, H., Thushara, D., Bao, B., Zhao, S., & Liu, H. (2020). Thermodynamic Barrier for Nanoparticle Penetration into Nanotubes. Langmuir, 36(51), 15514–15522. https://doi.org/10.1021/acs.langmuir.0c02741 en_US
dc.identifier.issn 0743-7463 en_US
dc.identifier.uri http://dl.lib.uom.lk/handle/123/20794
dc.description.abstract It is promising yet challenging to develop efficient methods to separate nanoparticles (NPs) with nanochannel devices. Herein, in order to guide and develop the separation method, the thermodynamic mechanism of NP penetration into solvent-filled nanotubes is investigated by using classical density functional theory. The potential of mean force (PMF) is calculated to evaluate the thermodynamic energy barrier for NP penetration into nanotubes. The accuracy of the theory is validated by comparing it with parallel molecular dynamics simulation. By examining the effects of nanotube size, solvent density, and substrate wettability on the PMF, we find that a large tube, a low bulk solvent density, and a solvophilic substrate can boost the NP penetration into nanotubes. In addition, it is found that an hourglass-shaped entrance can effectively improve the NP penetration efficiency compared with a square-shaped entrance. Furthermore, the minimum separation density of NPs in solution is identified, below which the NP penetration into nanotubes requires an additional driving force. Our findings provide fundamental insights into the thermodynamic barrier for NP penetration into nanotubes, which may provide theoretical guidance for separating two components using microfluidics. en_US
dc.language.iso en_US en_US
dc.publisher American Chemical Society en_US
dc.title Thermodynamic Barrier for Nanoparticle Penetration into Nanotubes en_US
dc.type Article-Full-text en_US
dc.identifier.year 2020 en_US
dc.identifier.journal Langmuir en_US
dc.identifier.issue 51 en_US
dc.identifier.volume 36 en_US
dc.identifier.database ACS Publication en_US
dc.identifier.pgnos 15514–15522 en_US
dc.identifier.doi https://doi.org/10.1021/acs.langmuir.0c02741 en_US


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