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Fully Relativistic Calculations of Magneto-Optical Kerr Effect
Author(s) -
Mingfang Li,
Toshihiro Ariizumi,
S. Suzuki
Publication year - 2007
Publication title -
journal of the physical society of japan
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.76
H-Index - 139
eISSN - 1347-4073
pISSN - 0031-9015
DOI - 10.1143/jpsj.76.054702
Subject(s) - physics , relativistic quantum chemistry , optical conductivity , dirac (video compression format) , kubo formula , dirac equation , angular momentum , coupling (piping) , total angular momentum quantum number , conductivity , matrix (chemical analysis) , operator (biology) , quantum mechanics , quantum electrodynamics , materials science , biochemistry , chemistry , composite material , repressor , transcription factor , neutrino , metallurgy , gene
We study the magneto-optical Kerr effect using fully relativistic calculations. Spin–orbit coupling is dealt with exactly solving the Dirac equation directly and the matrix elements of the Dirac matrices α are used in a fully relativistic expression of the Kubo formula for the optical conductivity derived with a relativistic sum rule. We also perform approximate calculations of the optical conductivity to examine the accuracy of a partly relativistic expression in which the matrix elements of the momentum operator p are used instead. As an example, we carry out calculations for bcc Fe and fcc Ni using the fully relativistic full-potential linear-combination-of-atomic-orbitals method. It is found that the partly relativistic treatment is good for the diagonal optical conductivity while it is not very good for the off-diagonal optical conductivity, the Kerr rotation angle, and the Kerr ellipticity. The results of the present study are compared to those of experimental and other theoretical studies

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