Magnetic, Optical, and Magnetooptical Properties of Spinel-Type ACr_2X_4 (A=Mn, Fe, Co, Cu, Zn, Cd; X=O, S, Se)(Condensed matter: electronic structure and electrical, magnetic, and optical properties)
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概要
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A comprehensive study of magnetic, optical, and magnetooptical properties was carried out for single crystals of the spinel-type ACr_2X_4 (A=Mn, Fe, Co, Cu, Zn, and Cd; X=O, S, and Se). The optical reflectivity measurements for 0.1-30eV revealed a wide variation in electronic structures on a large energy scale between oxides (X=O) and chalcogenides (X=S and Se). For A=Fe and Co, we observed the intra-atomic d-d transitions of A^<2+> ions with a tetrahedral coordination, and successfully deduced the crystal field splitting ΔE, the Racah parameter B, and the spin-orbit coupling constant ζ by analysis based on the ligand field theory. A comparison of these optical parameters between oxides and chalcogenides indicated the strong covalency effect in the chalcogenides. In A=Cu, the insulator-metal transition between X=O and Se was clearly demonstrated by optical conductivity spectra. Magnetic properties were discussed in relation to electronic structures. A compound with a small optical gap is typically a ferrimagnet with antiparallel arrangements of A^<2+> and Cr^<3+> spins, whereas a compound with a large optical gap undergoes first-order phase transition into spiral spin ordering at a low temperature. We found that the magnetic anisotropy constants K_1 for ACr_2S_4 (A=Mn, Fe, and Co) are approximately scaled by the inverse of the intra-atomic d-d transition energies of A^<2+> ions in agreement with the second-order perturbation theory for single-ion anisotropy. The magnetooptical spectra in a wide energy range (0.2-4.5 eV) were measured for chalcogenides focusing on the d-d transition resonance. We observed gigantic magnetooptical signals up to 4.1° in the energy range of ^4A_2→^4T_2 and ^4T_2→^4T_1 transitions of Co^<2+> ions for CoGr_2S_4, and analyzed them in the framework of the ligand field theory. We propose that the strong covalency of the ligand sulfur, as well as the local breakdown of inversion symmetry, in the tetrahedral site plays a crucial role in the enhancement of magnetooptical responses.
- 2008-03-15
著者
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TOKURA Yoshinori
Department of Applied Physics, University of Tokyo
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MIYASAKA Shigeki
Department of Physics, Graduate School of Science, Osaka University
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Tokura Yoshinori
Department Of Applied Physics Faculty Of Engineering The University Of Tokyo
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Tokura Yoshinori
Department Of Applied Physics University Of Tokyo:correlated Electron Research Center (cerc) Nationa
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Tokura Yoshinori
Department Of Applied Physics University Of Tokyo:correlated Electron Research Center (cerc) Nationa
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OHGUSHI Kenya
Department of Applied Physics, University of Tokyo
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OKIMOTO Yoichi
Correlated Electron Research Center (CERC), National Institute of Advanced Industrial Science and Te
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OGASAWARA Takeshi
Correlated Electron Research Center (CERC), National Institute of Advanced Industrial Science and Te
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Okimoto Yoichi
Correlated Electron Research Center (cerc) National Institute Of Advanced Industrial Science And Tec
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Okimoto Yoichi
Joint Research Center For Atom Technology (jrcat)
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Okimoto Yoichi
Correlated Electon Research Center (cerc) National Institute Of Advanced Industrial Science And Tech
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Miyasaka Shigeki
Department Of Applied Physics University Of Tokyo:(present Office)department Of Physics Osaka Univer
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Miyasaka Shigeki
Correlated Electon Research Center (cerc) National Institute Of Advanced Industrial Science And Tech
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Miyasaka Shigeki
Institute For Solid State Physics University Of Tokyo:(present)joint Research Center For Atom Techno
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Miyasaka Shigeki
Institute For Solid State Physics University Of Tokyo
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Ohgushi Kenya
Department Of Applied Physics University Of Tokyo:(present Office)institute For Solid State Physics
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Ohgushi Kenya
Department Of Applied Physics University Of Tokyo
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OGASAWARA Takeshi
National Institute of Advanced Industrial Science and Technology (AIST)
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Okimoto Yoichi
Correlated Electron Research Center (cerc) National Institute Of Advanced Industrial Science And Tec
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Okimoto Yoichi
Correlated Electron Research Center (cerc) National Institute Of Advanced Industrial Science And Tec
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Okimoto Y
Correlated Electron Research Center (cerc) National Institute Of Advanced Industrial Science And Tec
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Ogasawara T
National Institute Of Advanced Industrial Science And Technology (aist)
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Tokura Yoshinori
Department Of Applied Physics And Quantum Phase Electronics Center University Of Tokyo
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Ohgushi Kenya
Department Of Applied Physics University Of Tokyo:(present Office)institute For Solid State Physics
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Miyasaka Shigeki
Department Of Applied Physics University Of Tokyo
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