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Beyond Born–Oppenheimer constructed diabatic potential energy surfaces for F + H2 reaction.

Authors :
Mukherjee, Bijit
Naskar, Koushik
Mukherjee, Soumya
Ravi, Satyam
Shamasundar, K. R.
Mukhopadhyay, Debasis
Adhikari, Satrajit
Source :
Journal of Chemical Physics; 11/7/2020, Vol. 153 Issue 17, p1-20, 20p
Publication Year :
2020

Abstract

First principles based beyond Born–Oppenheimer theory has been implemented on the F + H<subscript>2</subscript> system for constructing multistate global diabatic Potential Energy Surfaces (PESs) through the incorporation of Nonadiabatic Coupling Terms (NACTs) explicitly. The spin–orbit (SO) coupling effect on the collision process of the F + H<subscript>2</subscript> reaction has been included as a perturbation to the non-relativistic electronic Hamiltonian. Adiabatic PESs and NACTs for the lowest three electronic states (1<superscript>2</superscript>A′, 2<superscript>2</superscript>A′, and 1<superscript>2</superscript>A″) are determined in hyperspherical coordinates as functions of hyperangles for a grid of fixed values of the hyperradius. Jahn–Teller (JT) type conical intersections between the two A′ states translate along C<subscript>2 v </subscript> and linear geometries in F + H<subscript>2</subscript>. In addition, A′ and A″ states undergo Renner–Teller (RT) interaction at collinear configurations of this system. Both JT and RT couplings are validated by integrating NACTs along properly chosen contours. Subsequently, we have solved adiabatic-to-diabatic transformation (ADT) equations to evaluate the ADT angles for constructing the diabatic potential matrix of F + H<subscript>2</subscript>, including the SO coupling terms. The newly calculated diabatic PESs are found to be smooth, single-valued, continuous, and symmetric and can be invoked for performing accurate scattering calculations on the F + H<subscript>2</subscript> system. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219606
Volume :
153
Issue :
17
Database :
Complementary Index
Journal :
Journal of Chemical Physics
Publication Type :
Academic Journal
Accession number :
146911761
Full Text :
https://doi.org/10.1063/5.0021885