Screening effects on the electronic structure of the hydrogen molecular ion
Entity
UAM. Departamento de QuímicaPublisher
American Physical SocietyDate
2017-01-20Citation
10.1103/PhysRevA.95.012504
Physical Review A 95.1 (2017): 012504
ISSN
1050-2947 (print); 1094-1622 (online)DOI
10.1103/PhysRevA.95.012504Funded by
Work supported by the Advanced Grant of the European Research Council XCHEM 290853, the European COST Action XLIC CM1204, and the MINECO Project No. FIS2013-42002-R. A.F.O.-L. acknowledges financial support from EACEA through an Erasmus Mundus scholarship. J.L.S.-V. acknowledges financial support from Vicerrectoria de investigacion at Universidad de Antioquia (Contract No. E01538 and Estrategia de Sostenibilidad 2016-2017) and from Departamento Administrativo de Ciencia, Tecnologia e Innovacion (COLCIENCIAS, Colombia) under Contract No.111565842968Project
info:eu-repo/grantAgreement/EC/FP7/290853; Gobierno de España. FIS2013-42002-R; info:eu-repo/grantAgreement/EC/FP7/321971Editor's Version
http://dx.doi.org/10.1103/PhysRevA.95.012504Subjects
Eigenvalues and eigenfunctions; External electromagnetic field; Hydrogen molecular ion; Partial wave expansion; QuímicaRights
© 2017 American Physical SocietyAbstract
We study the effect that a statically screened Coulomb potential represented by a Debye-Hückel-Yukawa potential has in the electronic structure of the simplest molecule H2+ within the Born-Oppenheimer approximation. The method of solution is based on a two-center partial-wave expansion expressed in confocal elliptic coordinates using B-spline polynomials. General algorithms for the computation of energies, wave functions, and dipole and nonadiabatic radial matrix elements are given in detail. As it occurs in atoms, screening in simple molecules shifts the energies of bound states upwards so that, as screening increases, every bound state eventually crosses the upper ionization threshold at a critical screening value. The loss of long-range Coulomb interactions has its effect in the structure of wave functions, and consequently in the dipole and nonadiabatic matrix elements at intermediate and long internuclear distances, which determine the dynamics in external electromagnetic fields and collisional processes. Other issues related to a practical solution of the arbitrary sign problem, as well as the assignment of angular and radial nodes to the variational eigenfunctions, and the appearance of molecular shape resonances and Borromean states in H2+ as screening increases, are also addressed in this work
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Google Scholar:Ordóñez-Lasso, Andrés Felipe
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Martín García, Fernando
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Sanz-Vicario, José Luis
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