Article ID Journal Published Year Pages File Type
5450262 Physica E: Low-dimensional Systems and Nanostructures 2017 9 Pages PDF
Abstract

•High spin polarized current around the room temperature can be generated using temperature difference instead of voltage bias.•The transmission peaks in ZGNR is more farther than ZGeNR and it does not have spin polarized current near the room temperature.•By tuning the back gate voltage, the spin current can be completely modulated and polarized.

In this paper, using first principle calculation and non-equilibrium Green's function, the thermally induced spin current in Hydrogen terminated Zigzag-edge Germanene Nanoribbon (ZGeNR-H) is investigated. In this model, because of the difference between the source and the drain temperature of ZGeNR device, the spin up and spin down currents flow in the opposite direction with two different threshold temperatures (Tth). Hence, a pure spin polarized current which belongs to spin down is obtained. It is shown that, for temperatures above the threshold temperature spin down current increases with the increasing temperature up to 75 K and then decreases. But spin up current rises steadily and in the high temperature we can obtain polarized spin up current. In addition, we show an acceptable spin current around the room temperature for ZGeNR. The transmission peaks in ZGeNR which are closer to the Fermi level rather than Zigzag Graphene Nanoribbon (ZGNRS) which causes ZGeNR to have spin current at higher temperatures. Finally, it is indicated that by tuning the back gate voltage, the spin current can be completely modulated and polarized. Simulation results verify the Zigzag Germanene Nanoribbon as a promising candidate for spin caloritronics devices, which can be applied in future low power consumption technology.

Related Topics
Physical Sciences and Engineering Materials Science Electronic, Optical and Magnetic Materials
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