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How to realize a spin-dependent Seebeck diode effect in metallic zigzag gamma-graphyne nanoribbons?

机译:如何实现一个spin-dependent塞贝克二极管吗在金属锯齿形gamma-graphyne生效nanoribbons吗?

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摘要

The spin-dependent Seebeck effect (SDSE) is one of the core topics of spin caloritronics. In the traditional device designs of spin-dependent Seebeck rectifiers and diodes, finite spin-dependent band gaps of materials are required to realize the on-off characteristic in thermal spin currents, and nearly zero charge current should be achieved to reduce energy dissipation. Here, we propose that two ferromagnetic zigzag gamma-graphyne nanoribbons (Z gamma GNRs) without any spin-dependent band gaps around the Fermi level can not only exhibit the SDSE, but also display rectifier and diode effects in thermal spin currents characterized by threshold temperatures, which originates from the compensation effect occurring in spin-dependent transmissions but not from the spin-splitting band gaps in materials. The metallic characteristics of Z gamma GNRs bring about an advantage that the gate voltage is an effective route to adjust the symmetry of spin-splitting bands to obtain pure thermal spin currents. The results provide a new mechanism to realize spin-Seebeck rectifier and diode effects in 2D materials and expand material candidates towards spin-Seebeck device applications.
机译:的spin-dependent塞贝克效应(SDSE)就是其中之一自旋caloritronics的核心主题。传统的spin-dependent设备设计塞贝克整流器二极管,有限的spin-dependent材料的带隙需要实现的开关特性热自旋电流,几乎为零当前应达到减少能量耗散。铁磁曲折gamma-graphyne nanoribbons(Z伽马GNRs)没有任何spin-dependent乐队差距在费米能级不仅可以展示SDSE,但也显示整流二极管影响热自旋电流的特征阈值温度,这源于发生在spin-dependent补偿效应从spin-splitting传输但不材料的带隙。Z特征γGNRs带来一个栅电压是一种有效的优势路线调整spin-splitting的对称乐队获得纯热自旋电流。结果提供一种新的机制来实现在2 d spin-Seebeck整流器和二极管效应材料和材料候选人向扩张spin-Seebeck设备应用程序。

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