Spin Seebeck effect in nonmagnetic excitonic insulators

J. Nasu, M. Naka
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引用次数: 4

Abstract

We propose a mechanism of the spin Seebeck effect attributed to excitonic condensation in a nonmagnetic insulator. We analyze a half-filled two-orbital Hubbard model with a crystalline field splitting in the strong coupling limit. In this model, the competition between the crystalline field and electron correlations brings about an excitonic insulating state, where the two orbitals are spontaneously hybridized. Using the generalized spin-wave theory and Boltzmann transport equation, we find that a spin current generated by a thermal gradient is observed in the excitonic insulating state without magnetic fields. The spin Seebeck effect originates from spin-split collective excitation modes although the ground state does not exhibit any magnetic orderings. This peculiar phenomenon is inherent in the excitonic insulating state, whose order parameter is time-reversal odd and yields a spin splitting for the collective excitation modes. We also find that the spin current is strongly enhanced and its direction is inverted in the vicinity of the phase transition to another magnetically ordered phase. We suggest that the present phenomenon is possibly observed in perovskite cobaltites with the GdFeO$_3$-type lattice distortion.
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非磁性激子绝缘体中的自旋塞贝克效应
我们提出了非磁性绝缘体中激子凝聚引起的自旋塞贝克效应的机制。我们分析了在强耦合极限下晶体场分裂的半填充双轨道Hubbard模型。在该模型中,晶体场和电子相关性之间的竞争导致激子绝缘状态,两个轨道自发杂化。利用广义自旋波理论和玻尔兹曼输运方程,我们发现在没有磁场的激子绝缘状态下,热梯度产生自旋电流。自旋塞贝克效应来源于自旋分裂的集体激发模式,尽管基态不表现出任何磁有序。这种奇特的现象是固有的激子绝缘状态,其序参量是时间反转奇数,并产生自旋分裂的集体激励模式。我们还发现自旋电流被强烈增强,其方向在相变到另一个磁有序相附近反转。我们认为这种现象可能发生在具有GdFeO$_3$型晶格畸变的钙钛矿钴中。
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