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Ultrafast Rotational and Translational Energy Relaxation in Neat Liquids.

Authors :
Petersen J
Møller KB
Hynes JT
Rey R
Source :
The journal of physical chemistry. B [J Phys Chem B] 2021 Nov 25; Vol. 125 (46), pp. 12806-12819. Date of Electronic Publication: 2021 Nov 11.
Publication Year :
2021

Abstract

The excess energy flow pathways during rotational and translational relaxation induced by rotational or translational excitation of a single molecule of and within each of four different neat liquids (H <subscript>2</subscript> O, MeOH, CCl <subscript>4</subscript> , and CH <subscript>4</subscript> ) are studied using classical molecular dynamics simulations and energy flux analysis. For all four liquids, the relaxation processes for both types of excitation are ultrafast, but the energy flow is significantly faster for the polar, hydrogen-bonded (H-bonded) liquids H <subscript>2</subscript> O and MeOH. Whereas the majority of the initial excess energy is transferred into hindered rotations (librations) for rotational excitation in the H-bonded liquids, an almost equal efficiency for transfer to translational and rotational motions is observed in the nonpolar, non-H-bonded liquids CCl <subscript>4</subscript> and CH <subscript>4</subscript> . For translational excitation, transfer to translational motions dominates for all liquids. In general, the energy flows are quite local; i.e., more than 70% of the energy flows directly to the first solvent shell molecules, reaching almost 100% for CCl <subscript>4</subscript> and CH <subscript>4</subscript> . Finally, the determined validity of linear response theory for these nonequilibrium relaxation processes is quite solvent-dependent, with the deviation from linear response most marked for rotational excitation and for the nonpolar liquids.

Details

Language :
English
ISSN :
1520-5207
Volume :
125
Issue :
46
Database :
MEDLINE
Journal :
The journal of physical chemistry. B
Publication Type :
Academic Journal
Accession number :
34762424
Full Text :
https://doi.org/10.1021/acs.jpcb.1c08014