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首页> 外文期刊>Journal of Materials Science >Tunable spin transport and quantum phase transitions in silicene materials and superlattices
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Tunable spin transport and quantum phase transitions in silicene materials and superlattices

机译:可调谐旋转输送和硅材料和超晶格中的量子相变

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摘要

In this paper, we study spin transport properties of silicene structures such as ribbons and superlattices with the Kane-Mele model. We investigate the effects of ferromagnetic and antiferromagnetic exchange fields, vertical and transverse electric fields and defects on the band structure, density of states, as well as conductance of the system. Our calculated results indicate that by applying a vertical electric field and/or an antiferromagnetic exchange field, metal-semimetal and also metal-semiconductor quantum phase transitions occur. We show that a zigzag silicene ribbon, when exposed to a transverse electric field in combination with an antiferromagnetic exchange field, behaves as a half-metal that allows one spin state electrons to move. Furthermore, under a vertical electric field and in the simultaneous presence of ferromagnetic and antiferromagnetic exchange fields applied to two half-widths of the ribbon, we observe the half-metallic phase. Our results help to control spin currents and to have new applications in silicene spintronics.
机译:在本文中,我们研究了硅结构的旋转运输特性,如带凯恩 - 熔体模型的带状结构和超晶格。我们调查铁磁和反铁磁交换场,垂直和横向电场的影响以及缺陷在带结构,状态密度以及系统的电导。我们计算的结果表明,通过施加垂直电场和/或反铁磁交换场,发生金属半晶体和金属半导体量子相变。我们表明,Zigzag硅片带,当与反铁磁交换场相结合地暴露于横向电场时,表现为允许一个自旋状态电子移动的半金属。此外,在垂直电场和同时存在的铁磁性和反铁磁交换区域的施加到带的两个半宽度的带子中,我们观察到半金属相。我们的结果有助于控制纺丝电流,并在硅胶闪蒸中具有新的应用。

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