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Improved All-Carbon Spintronic Device Design

机译:改进的全碳自旋电子器件设计

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摘要

The discovery of magnetism in carbon structures containing zigzag edges has stimulated new directions in the development and design of spintronic devices. However, many of the proposed structures are designed without incorporating a key phenomenon known as topological frustration, which leads to localized non-bonding states (free radicals), increasing chemical reactivity and instability. By applying graph theory, we demonstrate that topological frustrations can be avoided while simultaneously preserving spin ordering, thus providing alternative spintronic designs. Using tight-binding calculations, we show that all original functionality is not only maintained but also enhanced, resulting in the theoretically highest performing devices in the literature today. Furthermore, it is shown that eliminating armchair regions between zigzag edges significantly improves spintronic properties such as magnetic coupling.
机译:包含锯齿形边缘的碳结构中磁性的发现刺激了自旋电子器件的开发和设计的新方向。但是,许多建议的结构在设计时都没有引入称为拓扑挫折的关键现象,这会导致局部的非键合状态(自由基),增加的化学反应性和不稳定性。通过应用图论,我们证明了可以在保持自旋有序的同时避免拓扑问题,从而提供了自旋电子学设计。使用紧密绑定计算,我们表明不仅可以维护所有原始功能,还可以增强所有功能,从而在当今文献中获得理论上性能最高的设备。此外,显示出消除锯齿形边缘之间的扶手椅区域显着改善了自旋电子学性质,例如磁耦合。

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