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A tri-atomic Renner-Teller system entangled with Jahn-Teller conical intersections
Author(s) -
András Csehi,
Attila Bende,
Gábor J. Halász,
Ágnes Vibók,
Anita Das,
Debasis Mukhopadhyay,
Michael Baer
Publication year - 2013
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.4773352
Subject(s) - adiabatic process , diabatic , hilbert space , coupling (piping) , jahn–teller effect , quantum mechanics , quantum entanglement , conical surface , physics , parameter space , space (punctuation) , planar , mixing (physics) , mathematical physics , chemistry , geometry , mathematics , quantum , ion , materials science , linguistics , philosophy , computer graphics (images) , computer science , metallurgy
The present study concentrates on a situation where a Renner-Teller (RT) system is entangled with Jahn-Teller (JT) conical intersections. Studies of this type were performed in the past for contours that surround the RT seam located along the collinear axis [see, for instance, G. J. Halász, Á. Vibók, R. Baer, and M. Baer, J. Chem. Phys. 125, 094102 (2006)]. The present study is characterized by planar contours that intersect the collinear axis, thus, forming a unique type of RT-non-adiabatic coupling terms (NACT) expressed in terms of Dirac-δ functions. Consequently, to calculate the required adiabatic-to-diabatic (mixing) angles, a new approach is developed. During this study we revealed the existence of a novel molecular parameter, η, which yields the coupling between the RT and the JT NACTs. This parameter was found to be a pure number η = 22/π (and therefore independent of any particular molecular system) and is designated as Renner-Jahn coupling parameter. The present study also reveals an unexpected result of the following kind: It is well known that each (complete) group of states, responsible for either the JT-effect or the RT-effect, forms a Hilbert space of its own. However, the entanglement between these two effects forms a third effect, namely, the RT/JT effect and the states that take part in it form a different Hilbert space.

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