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Indentation and Self-Healing Mechanisms of a Self-Assembled Monolayer-A Combined Experimental and Modeling Study

Meltzer, Christian; Jaeger, Christof; Paul, Jonas; Dietrich, Hanno; J�ger, Christof M.; Clark, Timothy; Zahn, Dirk; Braunschweig, Bj�rn; Peukert, Wolfgang

Authors

Christian Meltzer

Christof Jaeger

Jonas Paul

Hanno Dietrich

Christof M. J�ger

Timothy Clark

Dirk Zahn

Bj�rn Braunschweig

Wolfgang Peukert



Abstract

A combination of in situ vibrational sum-frequency generation (SFG) spectroscopy and molecular-dynamics (MD) simulations has allowed us to study the effects of indentation of self-assembled octadecylphosphonic acid (ODPA) monolayers on α-Al2O3(0001). Stress-induced changes in the vibrational signatures of C–H stretching vibrations in SFG spectra and the results of MD simulations provide clear evidence for an increase in gauche-defect density in the monolayer as a response to indentation. A stress-dependent analysis indicates that the defect density reaches saturation at approximately 155 MPa. After stress is released, the MD simulations show an almost instantaneous healing of pressure-induced defects in good agreement with experimental results. The lateral extent of the contact areas was studied with colocalized SFG spectroscopy and compared to theoretical predictions for pressure gradients from Hertzian contact theory. SFG experiments reveal a gradual increase in gauche-defect density with pressure before saturation close to the contact center. Furthermore, our MD simulations show a spatial anisotropy of pressure-induced effects within ODPA domains: molecules tilted in the direction of the pressure gradient increase in tilt angle while those on the opposite side form gauche-defects.

Citation

Meltzer, C., Jaeger, C., Paul, J., Dietrich, H., Jäger, C. M., Clark, T., …Peukert, W. (2014). Indentation and Self-Healing Mechanisms of a Self-Assembled Monolayer-A Combined Experimental and Modeling Study. Journal of the American Chemical Society, 136(30), 10718–10727. https://doi.org/10.1021/ja5048076

Journal Article Type Article
Acceptance Date Jul 11, 2014
Online Publication Date Jul 23, 2014
Publication Date Jul 30, 2014
Deposit Date Jul 2, 2018
Journal Journal of the American Chemical Society
Print ISSN 0002-7863
Publisher American Chemical Society
Peer Reviewed Peer Reviewed
Volume 136
Issue 30
Pages 10718–10727
DOI https://doi.org/10.1021/ja5048076
Public URL https://nottingham-repository.worktribe.com/output/1104630
Publisher URL https://pubs.acs.org/doi/10.1021/ja5048076
PMID 00033969

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