Faraday cage screening reveals intrinsic aspects of the van der Waals attraction

View/ Open
File version
Version of Record (VoR)
Author(s)
Li, Musen
Reimers, Jeffrey R
Dobson, John F
Gould, Tim
Year published
2018
Metadata
Show full item recordAbstract
General properties of the recently observed screening of the van
der Waals (vdW) attraction between a silica substrate and silica
tip by insertion of graphene are predicted using basic theory
and first-principles calculations. Results are then focused on
possible practical applications, as well as an understanding of
the nature of vdW attraction, considering recent discoveries
showing it competing against covalent and ionic bonding. The
traditional view of the vdW attraction as arising from pairwiseadditive
London dispersion forces is considered using Grimme’s
“D3” method, comparing results to those from Tkatchenko’s
more ...
View more >General properties of the recently observed screening of the van der Waals (vdW) attraction between a silica substrate and silica tip by insertion of graphene are predicted using basic theory and first-principles calculations. Results are then focused on possible practical applications, as well as an understanding of the nature of vdW attraction, considering recent discoveries showing it competing against covalent and ionic bonding. The traditional view of the vdW attraction as arising from pairwiseadditive London dispersion forces is considered using Grimme’s “D3” method, comparing results to those from Tkatchenko’s more general many-body dispersion (MBD) approach, all interpreted in terms of Dobson’s general dispersion framework. Encompassing the experimental results, MBD screening of the vdW force between two silica bilayers is shown to scale up to medium separations as 1.25 de/d, where d is the bilayer separation and de is its equilibrium value, depicting antiscreening approaching and inside de. Means of unifying this correlation effect with those included in modern density functionals are urgently required.
View less >
View more >General properties of the recently observed screening of the van der Waals (vdW) attraction between a silica substrate and silica tip by insertion of graphene are predicted using basic theory and first-principles calculations. Results are then focused on possible practical applications, as well as an understanding of the nature of vdW attraction, considering recent discoveries showing it competing against covalent and ionic bonding. The traditional view of the vdW attraction as arising from pairwiseadditive London dispersion forces is considered using Grimme’s “D3” method, comparing results to those from Tkatchenko’s more general many-body dispersion (MBD) approach, all interpreted in terms of Dobson’s general dispersion framework. Encompassing the experimental results, MBD screening of the vdW force between two silica bilayers is shown to scale up to medium separations as 1.25 de/d, where d is the bilayer separation and de is its equilibrium value, depicting antiscreening approaching and inside de. Means of unifying this correlation effect with those included in modern density functionals are urgently required.
View less >
Journal Title
Proceedings of the National Academy of Sciences of the United States of America
Volume
115
Issue
44
Copyright Statement
© The Author(s) 2018. This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International (CC BY-NC-ND 4.0) License (http://creativecommons.org/licenses/by-nc-nd/4.0/) which permits unrestricted, non-commercial use, distribution and reproduction in any medium, providing that the work is properly cited.
Subject
Other environmental sciences not elsewhere classified