Response of the mechanical and chiral character of ethane to ultra‐fast laser pulses

Author:

Mi Xiao Peng1,Lu Hui1,Xu Tianlv1,Früchtl Herbert2,van Mourik Tanja2ORCID,Paterson Martin J.3ORCID,Kirk Steven R.1,Jenkins Samantha1ORCID

Affiliation:

1. Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research and Key Laboratory of Resource National and Local Joint Engineering Laboratory for New Petro‐chemical Materials and Fine Utilization of Resources, College of Chemistry and Chemical Engineering Hunan Normal University Changsha China

2. EaStCHEM School of Chemistry University of Saint Andrews Fife UK

3. Institute of Chemical Sciences, School of Engineering and Physical Sciences Heriot‐Watt University Edinburgh UK

Abstract

AbstractA pair of simulated left and right circularly polarized ultra‐fast laser pulses of duration 20 femtoseconds that induce a mixture of excited states are applied to ethane. The response of the electron dynamics is investigated within the next generation quantum theory of atoms in molecules (NG‐QTAIM) using third‐generation eigenvector‐trajectories which are introduced in this work. This enables an analysis of the mechanical and chiral properties of the electron dynamics of ethane without needing to subject the C‐C bond to external torsions as was the case for second‐generation eigenvector‐trajectories. The mechanical properties, in particular, the bond‐flexing and bond‐torsion were found to increase depending on the plane of the applied laser pulses. The bond‐flexing and bond‐torsion, depending on the plane of polarization, increases or decreases after the laser pulses are switched off. This is explainable in terms of directionally‐dependent effects of the long‐lasting superpositions of excited states. The chiral properties correspond to the ethane molecule being classified as formally achiral consistent with previous NG‐QTAIM investigations. Future planned investigations using ultra‐fast circularly polarized lasers are briefly discussed.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Computational Mathematics,General Chemistry

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