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Squeezed Protons and Infrared Plasmonic Resonance Energy Transfer.

Authors :
Li TE
Paenurk E
Hammes-Schiffer S
Source :
The journal of physical chemistry letters [J Phys Chem Lett] 2024 Jan 25; Vol. 15 (3), pp. 751-757. Date of Electronic Publication: 2024 Jan 16.
Publication Year :
2024

Abstract

Unusual nuclear quantum effects may emerge near noble metal nanostructures such as squeezed vibrational states in molecular junctions and plasmonic resonance energy transfer in the infrared domain. Herein, nuclear quantum effects near heavy metals are studied by nuclear-electronic orbital density functional theory (NEO-DFT) with an effective core potential. For a quantum proton sandwiched between a pair of gold tips modeled by two Au <subscript>6</subscript> clusters, NEO-DFT calculations suggest that the quantum proton density can be squeezed as the tip distance decreases. For an HF molecule placed near a one-dimensional Au nanowire composed of up to 34 Au atoms, real-time NEO time-dependent density functional theory (RT-NEO-TDDFT) shows that the infrared plasmonic motion within the Au nanowire may resonantly transfer electronic energy to the HF proton vibrational stretch mode. Overall, these calculations illustrate the advantages of the NEO approach for probing nuclear quantum effects, such as squeezed proton vibrational states and infrared plasmonic resonance energy transfer.

Details

Language :
English
ISSN :
1948-7185
Volume :
15
Issue :
3
Database :
MEDLINE
Journal :
The journal of physical chemistry letters
Publication Type :
Academic Journal
Accession number :
38226772
Full Text :
https://doi.org/10.1021/acs.jpclett.3c03112