Show item record

dc.contributor.authorAmara, Fadwa Ben
dc.contributor.authorDionne, Éric R.
dc.contributor.authorKassir, Sahar
dc.contributor.authorPellerin, Christian
dc.contributor.authorBadia, Antonella
dc.date.accessioned2021-06-28T18:36:53Z
dc.date.availableMONTHS_WITHHELD:12fr
dc.date.available2021-06-28T18:36:53Z
dc.date.issued2020-06-29
dc.identifier.urihttp://hdl.handle.net/1866/25312
dc.publisherAmerican Chemical Societyfr
dc.titleMolecular origin of the odd–even effect of macroscopic properties of n-Alkanethiolate self-assembled monolayers : bulk or interface?fr
dc.typeArticlefr
dc.contributor.affiliationUniversité de Montréal. Faculté des arts et des sciences. Département de chimiefr
dc.identifier.doi10.1021/jacs.0c04288
dcterms.abstractElucidating the influence of the monolayer interface versus bulk on the macroscopic properties (e.g., surface hydrophobicity, charge transport, and electron transfer) of organic self-assembled monolayers (SAMs) chemically anchored to metal surfaces is a challenge. This article reports the characterization of prototypical SAMs of n-alkanethiolates on gold (CH3(CH2)nSAu, n = 6–19) at the macroscopic scale by electrochemical impedance spectroscopy and contact angle goniometry, and at the molecular level, by infrared reflection absorption spectroscopy. The SAM capacitance, dielectric constant, and surface hydrophobicity exhibit dependencies on both the length (n) and parity (nodd or neven) of the polymethylene chain. The peak positions of the CH2 stretching modes indicate a progressive increase in the chain conformational order with increasing n between n = 6 and 16. SAMs of nodd have a greater degree of structural gauche defects than SAMs of neven. The peak intensities and positions of the CH3 stretching modes are chain length independent but show an odd–even alternation of the spatial orientation of the terminal CH3. The correlations between the different data trends establish that the chain length dependencies of the dielectric constant and surface hydrophobicity originate from changes in the polymethylene chain conformation (bulk), while the odd–even variation arises primarily from a difference in the chemical composition of the interface related to the terminal group orientation. These findings provide new physical insights into the structure–property relation of SAMs for the design of ultrathin film dielectrics as well as the understanding of stereostructural effects on the electrical characteristics of tunnel junctions.fr
dcterms.isPartOfurn:ISSN:0002-7863fr
dcterms.isPartOfurn:ISSN:1520-5126fr
dcterms.languageengfr
UdeM.ReferenceFournieParDeposant10.1021/jacs.0c04288fr
UdeM.VersionRioxxVersion acceptée / Accepted Manuscriptfr
oaire.citationTitleJournal of the American Chemical Societyfr
oaire.citationVolume142fr
oaire.citationIssue30fr
oaire.citationStartPage13051fr
oaire.citationEndPage13061fr


Files in this item

Thumbnail
Thumbnail

This item appears in the following Collection(s)

Show item record

This document disseminated on Papyrus is the exclusive property of the copyright holders and is protected by the Copyright Act (R.S.C. 1985, c. C-42). It may be used for fair dealing and non-commercial purposes, for private study or research, criticism and review as provided by law. For any other use, written authorization from the copyright holders is required.