TY - JOUR
T1 - G-type antiferromagnetism and orbital ordering due to the crystal field from the rare-earth ions induced by the GdFeO 3-type distortion in RTiO 3 where R = La, Pr, Nd and Sm
AU - Mochizuki, Masahito
AU - Imada, Masatoshi
N1 - Copyright:
Copyright 2011 Elsevier B.V., All rights reserved.
PY - 2004/7
Y1 - 2004/7
N2 - The origin of the antiferromagnetic order and puzzling properties of LaTiO 3 as well as the magnetic phase diagram of the perovskite titanates are studied theoretically. We show that in LaTiO 3, the t 2g degeneracy is eventually lifted by the La cations in the GdFeO 3-type structure, which generates a crystal field. This allows the description of the low-energy structure of LaTiO 3 by a single-band Hubbard model as a good starting point. The lowest-orbital occupation in this crystal field stabilizes the AFM(G) state, and well explains the spin-wave spectrum of LaTiO 3 obtained by the neutron scattering experiment. The orbital-spin structures for RTiO 3 where R = Pr, Nd and Sm are also accounted for by the same mechanism. We point out that through generating the R crystal field, the GdFeO 3-type distortion has a universal relevance in determining the orbital-spin structure of the perovskite compounds in competition with the Jahn-Teller mechanism, which has been overlooked in the literature. Since the GdFeO 3-type distortion is a universal phenomenon as is seen in a large number of perovskite compounds, this mechanism may also play important roles in other compounds of this type.
AB - The origin of the antiferromagnetic order and puzzling properties of LaTiO 3 as well as the magnetic phase diagram of the perovskite titanates are studied theoretically. We show that in LaTiO 3, the t 2g degeneracy is eventually lifted by the La cations in the GdFeO 3-type structure, which generates a crystal field. This allows the description of the low-energy structure of LaTiO 3 by a single-band Hubbard model as a good starting point. The lowest-orbital occupation in this crystal field stabilizes the AFM(G) state, and well explains the spin-wave spectrum of LaTiO 3 obtained by the neutron scattering experiment. The orbital-spin structures for RTiO 3 where R = Pr, Nd and Sm are also accounted for by the same mechanism. We point out that through generating the R crystal field, the GdFeO 3-type distortion has a universal relevance in determining the orbital-spin structure of the perovskite compounds in competition with the Jahn-Teller mechanism, which has been overlooked in the literature. Since the GdFeO 3-type distortion is a universal phenomenon as is seen in a large number of perovskite compounds, this mechanism may also play important roles in other compounds of this type.
KW - Crystal field splitting
KW - G-type antiferromagnetism
KW - GdFeO -type distortion
KW - Orbital degeneracy
KW - Orbital ordering
KW - Perovskite titanate
KW - Rare-earth cation
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U2 - 10.1143/JPSJ.73.1833
DO - 10.1143/JPSJ.73.1833
M3 - Article
AN - SCOPUS:9744242089
SN - 0031-9015
VL - 73
SP - 1833
EP - 1850
JO - journal of the physical society of japan
JF - journal of the physical society of japan
IS - 7
ER -