Research output: Contribution to journal › Article › peer-review
Light one-electron molecular ions within the finite-basis-set method for the two-center Dirac equation. / Solovyev, D.; Anikin, A.; Danilov, A.; Glazov, D.; Kotov, A.
In: Physica Scripta, Vol. 99, No. 4, 07.03.2024.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Light one-electron molecular ions within the finite-basis-set method for the two-center Dirac equation
AU - Solovyev, D.
AU - Anikin, A.
AU - Danilov, A.
AU - Glazov, D.
AU - Kotov, A.
N1 - Export Date: 21 March 2024 CODEN: PHSTB Сведения о финансировании: Russian Science Foundation, RSF, 23-22-00250 Текст о финансировании 1: The research was supported by RSF (project No. 23-22-00250).
PY - 2024/3/7
Y1 - 2024/3/7
N2 - During the last decades outstanding results on the precision description of light diatomic molecular compounds have been achieved. The most advanced calculations of electron binding energies have been realized mainly in the framework of the nonrelativistic approach with a consistent account of relativistic and radiative QED corrections. Recently, it has been shown that methods based on the Dirac equation are also suitable for obtaining highly accurate results in simple light molecules. In this paper, we present a completely relativistic method and discuss its application to the description of diatomic systems. In particular, the electronic spectra of the light one-electron quasi-molecular compounds H-H+, He+-He2+ and He+-H+ are analyzed. For this purpose, the two-center Dirac equation is solved by a dual-kinetic balanced finite-basis-set method for axially symmetric systems, called A-DKB. This method allows for a complete relativistic consideration of the electron at fixed inter-nuclear distances. A comparison of the obtained results with the nonrelativistic and relativistic calculations presented in the literature is performed. Without pursuing the goal of high accuracy calculations, the advantages and disadvantages of the approach, as well as possible applications of the method, are discussed in detail. © 2024 IOP Publishing Ltd.
AB - During the last decades outstanding results on the precision description of light diatomic molecular compounds have been achieved. The most advanced calculations of electron binding energies have been realized mainly in the framework of the nonrelativistic approach with a consistent account of relativistic and radiative QED corrections. Recently, it has been shown that methods based on the Dirac equation are also suitable for obtaining highly accurate results in simple light molecules. In this paper, we present a completely relativistic method and discuss its application to the description of diatomic systems. In particular, the electronic spectra of the light one-electron quasi-molecular compounds H-H+, He+-He2+ and He+-H+ are analyzed. For this purpose, the two-center Dirac equation is solved by a dual-kinetic balanced finite-basis-set method for axially symmetric systems, called A-DKB. This method allows for a complete relativistic consideration of the electron at fixed inter-nuclear distances. A comparison of the obtained results with the nonrelativistic and relativistic calculations presented in the literature is performed. Without pursuing the goal of high accuracy calculations, the advantages and disadvantages of the approach, as well as possible applications of the method, are discussed in detail. © 2024 IOP Publishing Ltd.
KW - A-DKB method
KW - Dirac electron spectrum
KW - one-electron ions
KW - quasi-molecule
KW - two-center problem
KW - Binding energy
KW - Linear equations
KW - Molecules
KW - Center problems
KW - Dirac electrons
KW - Dirac's equation
KW - Electron ions
KW - Electron spectrum
KW - One-electron ion
KW - Quasi-molecules
KW - Two-center problem
KW - Electrons
UR - https://www.mendeley.com/catalogue/5cc0b3d1-dabc-3b4d-a1a1-77e41744117a/
U2 - 10.1088/1402-4896/ad2e66
DO - 10.1088/1402-4896/ad2e66
M3 - статья
VL - 99
JO - Physica Scripta
JF - Physica Scripta
SN - 0031-8949
IS - 4
ER -
ID: 117803565