Phase transitions in spin-orbital coupled model for pyroxene titanium oxides

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Abstract

We study the competing phases and the phase transition phenomena in an effective spin-orbital coupled model derived for pyroxene titanium oxides ATiSi2O6 (A=Na, Li). Using the mean-field-type analysis and the numerical quantum transfer matrix method, we show that the model exhibits two different ordered states, the spin-dimer and orbital-ferro state and the spinferro and orbital-antiferro state. The transition between two phases is driven by the relative strength of the Hund's-rule coupling to the onsite Coulomb repulsion and/or by the external magnetic field. The ground-state phase diagram is determined. There is a keen competition between orbital and spin degrees of freedom in the multicritical regime, which causes large fluctuations and significantly affects finite-temperature properties in the paramagnetic phase. © 2005 The Physical Society of Japan.

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Hikihara, T., & Motome, Y. (2005). Phase transitions in spin-orbital coupled model for pyroxene titanium oxides. In Journal of the Physical Society of Japan (Vol. 74, pp. 212–215). Physical Society of Japan. https://doi.org/10.1143/jpsjs.74s.212

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