Gholami Zainab, Khoeini Farhad
Department of Physics, University of Zanjan, P.O. Box 45195-313, Zanjan, Iran.
Sci Rep. 2021 Jan 8;11(1):104. doi: 10.1038/s41598-020-80616-3.
The spin-dependent Seebeck effect (SDSE) and thermal spin-filtering effect (SFE) are now considered as the essential aspects of the spin caloritronics, which can efficiently explore the relationships between the spin and heat transport in the materials. However, there is still a challenge to get a thermally-induced spin current with no thermal electron current. This paper aims to numerically investigate the spin-dependent transport properties in hybrid graphene/silicene nanoribbons (GSNRs), using the nonequilibrium Green's function method. The effects of temperature gradient between the left and right leads, the ferromagnetic exchange field, and the local external electric fields are also included. The results showed that the spin-up and spin-down currents are produced and flow in opposite directions with almost equal magnitudes. This evidently shows that the carrier transport is dominated by the thermal spin current, whereas the thermal electron current is almost disappeared. A pure thermal spin current with the finite threshold temperatures can be obtained by modulating the temperature, and a negative differential thermoelectric resistance is obtained for the thermal electron current. A nearly zero charge thermopower is also obtained, which further demonstrates the emergence of the SDSE. The response of the hybrid system is then varied by changing the magnitudes of the ferromagnetic exchange field and local external electric fields. Thus, a nearly perfect SFE can be observed at room temperature, whereas the spin polarization efficiency is reached up to 99%. It is believed that the results obtained from this study can be useful to well understand the inspiring thermospin phenomena, and to enhance the spin caloritronics material with lower energy consumption.
自旋相关的塞贝克效应(SDSE)和热自旋过滤效应(SFE)现在被认为是自旋热电子学的重要方面,它们能够有效地探索材料中自旋与热输运之间的关系。然而,要获得没有热电子流的热致自旋电流仍然是一个挑战。本文旨在采用非平衡格林函数方法,对混合石墨烯/硅烯纳米带(GSNRs)中的自旋相关输运特性进行数值研究。同时还考虑了左右电极之间的温度梯度、铁磁交换场以及局部外部电场的影响。结果表明,产生了自旋向上和自旋向下的电流,且它们以几乎相等的大小沿相反方向流动。这明显表明载流子输运由热自旋电流主导,而热电子电流几乎消失。通过调节温度可以获得具有有限阈值温度的纯热自旋电流,并且热电子电流呈现负微分热电阻。还获得了近乎零的电荷热功率,这进一步证明了SDSE的出现。然后通过改变铁磁交换场和局部外部电场的大小来改变混合系统的响应。因此,在室温下可以观察到近乎完美的SFE,而自旋极化效率高达99%。相信本研究获得的结果有助于深入理解令人鼓舞的热自旋现象,并有助于开发低能耗的自旋热电子学材料。