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Magnetic structure and magnetic transport characteristics of nanostructures based on armchair-edged graphene nanoribbons

机译:基于扶手椅状石墨烯纳米带的纳米结构的磁结构和磁输运特性

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摘要

Exploring half-metallic nanostructures with a high Curie temperature and a wide half-metallic gap is a crucial solution for developing high-performance spintronic devices. Using the first-principles method, we design a new magnetic structure based on edge modification of armchair-edged graphene nanoribbons by Mn and F atoms (AGNR-Mn-F2). It is found that such a structure is an excellent half-metal with a wide bandgap (similar to 1.2 eV) and a stable magnetic ordering by a very high Curie temperature (T-c > 700 K) as well as being predicted to stably exist in a very large chemical potential range in experiment by the Gibbs free energy. And it is also shown that it possesses an outstanding magnetic device nature, such as a spin polarization of 100% in a very large bias region, a dual spin diode-like rectification ratio up to 105, and a spin-valve feature with a giant magnetoresistance approaching 108%, indicating a promising application for developing spintronic devices.
机译:探索具有高居里温度和宽半金属间隙的半金属纳米结构是开发高性能自旋电子器件的关键解决方案。使用第一原理方法,我们设计了一种新的磁性结构,该结构基于通过Mn和F原子(AGNR-Mn-F2)对扶手椅边缘的石墨烯纳米带的边缘修饰。发现这种结构是一种优良的半金属,其带隙较宽(类似于1.2 eV),并且在很高的居里温度(Tc> 700 K)下具有稳定的磁有序性,并且预计将稳定地存在于金属中。吉布斯自由能在实验中具有非常大的化学势范围。并且还显示出它具有出色的磁性器件特性,例如在非常大的偏置区域中具有100%的自旋极化,高达105的双自旋二极管状整流比以及自旋阀特性极强磁阻接近108%,表明在开发自旋电子器件方面有希望的应用。

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