论文标题
弹道引导电子对石墨烯纳米骨的疾病
Ballistic guided electrons against disorder in graphene nanoribbons
论文作者
论文摘要
石墨烯纳米纤维(GNR)是石墨烯中电子的天然波导。然而,与微米大小的样品不同,这些狭窄的石墨烯条纹几乎抑制了电导,这主要是由于在合成或切割过程中产生的边缘疾病散射。规避这种效果的一种可能方法是定义内部波导,该波导将特定模式与边缘疾病分离并允许弹道电导。有几个建议在石墨烯中定义波导的建议。在此手稿中,我们考虑应变褶皱和标量电位,并数值评估这些建议对边缘和散装障碍的表现。使用绿色的功能方法,我们计算锯齿形GNR的电导率和状态(LDOS)的局部密度,并表征了两种疾病中这些不同物理波引物效应的性能。我们发现,由于存在内部波浪的存在,GNR的电子电导率有所改善,其高原出现具有准焊性特性和针对边缘疾病的鲁棒性。这些发现将用于现代纳米技术并进行实验测试。
Graphene nanoribbons (GNRs) are natural waveguides for electrons in graphene. Nevertheless, unlike micron-sized samples, conductance is nearly suppressed in these narrow graphene stripes, mainly due to scattering with edge disorder generated during synthesis or cut. A possible way to circumvent this effect is to define an internal waveguide that isolates specific modes from the edge disorder and allows ballistic conductance. There are several proposals for defining waveguides in graphene; in this manuscript, we consider strain folds and scalar potentials and numerically evaluate these proposals' performance against edge and bulk disorder. Using the Green's function approach, we calculate conductance and the local density of states (LDOS) of zigzag GNRs and characterize the performance of these different physical waveguiding effects in both types of disorder. We found a general improvement in the electronic conductance of GNR due to the presence of the internal waveguiding, with the emergence of plateaus with quasi-ballistic properties and robustness against edge disorder. These findings are up to be applied in modern nanotechnology and being experimentally tested.