Abstract
Liquid-air interfaces have extensive implications in different areas of interest because the dynamical processes at the interface can be different from those in bulk. Thus, its characterization, understanding, and control may be pivotal in advancing discoveries. However, characterizing the interface requires special and selective tools to avoid signals from the bulk region. This surface specificity and versatility is achieved by using the second harmonic generation (SHG) responses. This study adopts multiscale simulation methods to evaluate the surface SHG responses of methanol-air interfaces with submonolayer resolution tackled by sequentially using classical molecular dynamics simulations under different temperatures and then employing quantum chemistry methods to compute the molecular first hyperpolarizabilities (β). This approach ensures the configurational diversity required to evaluate the average β values. The main achievements are (i) a quasi-absence of surface sensitivity of the mean polarizability 〈α〉 with values about 2% larger than those obtained in bulk, (ii) conversely, smooth variations on the polarizability anisotropy Δα are observed up to the fourth molecular layer at around 20 Å from the interface, and (iii) narrow interfacial effects on the SHG responses, β(−2ω;ω,ω), which are limited to the first molecular layer (∼3.0 Å) and characterized by a high contrast in the β ZZZ(−2ω;ω,ω) tensor component between the first and the subsequent layers. Similar trends are obtained at different temperatures or when increasing the number of methanol molecules treated at the quantum chemistry level, indicating the robustness of the approach for describing the dipolar molecular responses of air-liquid interfaces.
| Original language | English |
|---|---|
| Pages (from-to) | 8658-8669 |
| Number of pages | 12 |
| Journal | PCCP : Physical Chemistry Chemical Physics |
| Volume | 26 |
| Issue number | 11 |
| DOIs | |
| Publication status | Published - 26 Feb 2024 |
Funding
TNR is a postdoctoral researcher of the Fonds de la Recherche Scientifique - FNRS. The calculations were performed on the computing facilities of the Consortium des Équipements de Calcul Intensif (CÉCI, https://www.ceci-hpc.be) and of the University of Namur under the grants 2.5020.11, U.G006.15, U.G011.22, U.G018.19, RW1610468, RW/GEQ2016, and RW2110213. The present research also benefited from computational resources made available on Lucia, the Tier-1 supercomputer of the Walloon Region, infrastructure funded by the Walloon Region under the grant agreement no. RW1910247. TNR is a postdoctoral researcher of the Fonds de la Recherche Scientifique – FNRS. The calculations were performed on the computing facilities of the Consortium des Équipements de Calcul Intensif (CÉCI, https://www.ceci-hpc.be ) and of the University of Namur under the grants 2.5020.11, U.G006.15, U.G011.22, U.G018.19, RW1610468, RW/GEQ2016, and RW2110213. The present research also benefited from computational resources made available on Lucia, the Tier-1 supercomputer of the Walloon Region, infrastructure funded by the Walloon Region under the grant agreement no. RW1910247.
| Funders | Funder number |
|---|---|
| Fonds De La Recherche Scientifique - FNRS | |
| University of Namur | U.G018.19, 2.5020.11, U.G006.15, U.G011.22, RW/GEQ2016, RW1610468, RW2110213 |
| Waalse Gewest | RW1910247 |
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Dive into the research topics of 'Disentangling the molecular polarizability and first hyperpolarizability of methanol–air interfaces'. Together they form a unique fingerprint.Research output
- 3 Citations
- 1 Article
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Modeling second harmonic generation at alcohol/air interfaces. A molecular multi-layer approach
Ramos, T. N. & Champagne, B., 15 Jun 2025, In: Journal of Molecular Liquids. 428, p. 127499 127499.Research output: Contribution to journal › Article › peer-review
Projects
- 2 Finished
-
LASHG/MM: Liquid-Air Interfacial Second Harmonic Generation Responses Probed by Multiscale Molecular Modeling
Ramos, T. N. (PI) & CHAMPAGNE, B. (Supervisor)
1/10/22 → 30/09/25
Project: Research
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Equipment renewal for the Consortium des Equipements de Calcul Intensif (CECI)
Bontempi, G. (PI), Champagne, B. (CoPI), Geuzaine , C. (CoPI), RIGNANESE, G. M. (CoPI) & Lazzaroni, R. (CoPI)
1/01/22 → 31/12/23
Project: Research
Equipment
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High Performance Computing Technology Platform
Champagne, B. (Manager)
Technological Platform High Performance ComputingFacility/equipment: Technological Platform
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