Bender Scott A, Skarsvåg Hans, Brataas Arne, Duine Rembert A
Utrecht University, Princetonplein 5, 3584 CC Utrecht, Netherlands.
Department of Physics, Norwegian University of Science and Technology, NO-7491 Trondheim, Norway.
Phys Rev Lett. 2017 Aug 4;119(5):056804. doi: 10.1103/PhysRevLett.119.056804.
We investigate spin transport by thermally excited spin waves in an antiferromagnetic insulator. Starting from a stochastic Landau-Lifshitz-Gilbert phenomenology, we obtain the out-of-equilibrium spin-wave properties. In linear response to spin biasing and a temperature gradient, we compute the spin transport through a normal-metal-antiferromagnet-normal-metal heterostructure. We show that the spin conductance diverges as one approaches the spin-flop transition; this enhancement of the conductance should be readily observable by sweeping the magnetic field across the spin-flop transition. The results from such experiments may, on the one hand, enhance our understanding of spin transport near a phase transition, and on the other be useful for applications that require a large degree of tunability of spin currents. In contrast, the spin Seebeck coefficient does not diverge at the spin-flop transition. Furthermore, the spin Seebeck coefficient is finite even at zero magnetic field, provided that the normal metal contacts break the symmetry between the antiferromagnetic sublattices.
我们研究了反铁磁绝缘体中热激发自旋波的自旋输运。从随机的朗道-里夫希茨-吉尔伯特唯象学出发,我们得到了非平衡自旋波性质。在对自旋偏置和温度梯度的线性响应中,我们计算了通过正常金属-反铁磁体-正常金属异质结构的自旋输运。我们表明,当接近自旋翻转转变时,自旋电导发散;通过在自旋翻转转变处扫描磁场,这种电导的增强应该很容易观察到。一方面,此类实验结果可能会增进我们对相变附近自旋输运的理解,另一方面,对于需要高度可调自旋电流的应用也可能有用。相比之下,自旋塞贝克系数在自旋翻转转变处并不发散。此外,只要正常金属接触破坏了反铁磁亚晶格之间的对称性,即使在零磁场下自旋塞贝克系数也是有限的。