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Title:DFT study of ▫$\mathrm{Cl^-}$▫ ingress into organic self-assembled monolayers on aluminum
Authors:ID Chiter, Fatah (Author)
ID Costa, Dominique (Author)
ID Poberžnik, Matic, Institut "Jožef Stefan" (Author)
ID Milošev, Ingrid, Institut "Jožef Stefan" (Author)
ID Marcus, Philippe (Author)
ID Kokalj, Anton, Institut "Jožef Stefan" (Author)
Files:URL URL - Source URL, visit https://iopscience.iop.org/article/10.1149/1945-7111/ace334/pdf
 
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MD5: FD48D3196394FAB84A5176EAD14969E6
 
Language:English
Typology:1.01 - Original Scientific Article
Organization:Logo IJS - Jožef Stefan Institute
Abstract:We address the mechanism by which organic layers on aluminum substrate hinder the penetration of Cl− toward the metal substrate. Localized corrosion by chlorides on Al and its alloys is a major problem, and organic molecules that form self-assembled monolayers on metal substrates may provide efficient corrosion protection. In one of our previous works, we established experimentally that long-chain n-alkyl carboxylic acids form protective layers against Cl− corrosion on Al substrates. In a different work, we identified, using implicit models of the organic layer and metal substrate, two essential effects by which organic layers hinder the penetration of Cl− ions toward the metal substrate. The first effect is due to the inferior solvation of ions in the organic layer compared to that in an aqueous solvent. The second effect is due to the electric field at the electrochemical interface, and the extent to which it affects the penetration of Cl− depends on the electrode potential and the thickness of the organic layer. Both effects are related to a low dielectric constant of the self-assembled monolayer. In the present study, we continue our investigation and explicitly model the organic monolayer and Al substrate using density-functional-theory calculations. To this end, we consider organic monolayers consisting of either dodecanoic- or hexanoic-acid molecules. Current calculations confirm the findings of the simplified implicit models, i.e. the energy barrier for the Cl− penetration increases with the thickness of the organic monolayer and with Cl− concentration in the monolayer. Furthermore, we propose a new mechanism by which Cl− penetrates the organic monolayer. Due to the considerably inferior solvation of Cl− in the organic layer compared to that in water, calculations suggest that it is energetically easier to locally “open” the organic monolayer by creating a hole large enough to accommodate water molecules and Cl−. The presence of water molecules ensures a stronger Cl− solvation and a better electrostatic screening between anions. While the energy barrier for the Cl− penetration via the local “opening” mechanism is suggested to be smaller than for the penetration of Cl− into dense homogeneous organic monolayer, it is still significant enough to pose a considerable kinetic barrier for the penetration of Cl− from the aqueous solution into the organic monolayer at room temperature.
Keywords:aluminium, chlorides, self-assembled monolayer, localized corrosion, density-functional theory
Publication status:Published
Publication version:Version of Record
Submitted for review:22.02.2023
Publication date:14.07.2023
Publisher:IOP Publishing
Year of publishing:2023
Number of pages:str. [1-11]
Numbering:Vol. 170, no. 7, [article no.] 071504
Source:Združeno kraljestvo
PID:20.500.12556/DiRROS-22127 New window
UDC:546.3/.9
ISSN on article:1945-7111
DOI:10.1149/1945-7111/ace334 New window
COBISS.SI-ID:158922755 New window
Copyright:© 2023 The Author(s).
Note:Nasl. z nasl. zaslona; Soavtorji iz Slovenije: Matic Poberžnik, Ingrid Milošev, Anton Kokalj; Opis vira z dne 17. 7. 2023;
Publication date in DiRROS:29.04.2025
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Downloads:314
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Record is a part of a journal

Title:Journal of the electrochemical society
Publisher:Electrochemical Society
ISSN:1945-7111
COBISS.SI-ID:22698791 New window

Document is financed by a project

Funder:Ministry of Education, Science and Sport of Republic of Slovenia
Project number:3330-16-500040

Funder:ANR - French National Research Agency
Project number:ANR-15-MERA-0004
Name:Design of corrosion resistant coatings targeted for versatile applications
Acronym:COR_ID

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:P2-0393
Name:Napredni materiali za nizkoogljično in trajnostno družbo

Funder:GENCI
Project number:DARI A 0060802217

Licences

License:CC BY 4.0, Creative Commons Attribution 4.0 International
Link:http://creativecommons.org/licenses/by/4.0/
Description:This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.
Licensing start date:14.07.2023
Applies to:VoR

Secondary language

Language:Slovenian
Keywords:samourejene plasti, lokalna korozija, teorija gostotnega funkcionala


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