论文标题
雪佛群岛的充电运输机制
Charge Transport Mechanism in Chevron--Graphene Nanoribbons
论文作者
论文摘要
从实现石墨烯生长过程的原子精度控制的那一刻,提出了更多详细的碳同素异形体开放纳米级的新通道。最近合成并命名为Chevron-Graphene纳米骨(C-GNRS)的一种特殊类型的这种材料呈现V形(或“扭结”图案)。为了实现C-GNR在开发新应用程序中的影响力,应该主要理解其格子载体的形成和运输。在这里,我们研究了C-GNR中准粒子的静态和动力学特性。我们研究电子偶联和掺杂对系统的影响。我们还确定了C-GNR中存在的电荷载体种类。据观察,在离域传导方面与电荷载体介导的制度之间发生相变。这种相变高度取决于掺杂浓度。值得注意的是,确定了标准石墨烯纳米容器中与运输的关键差异。注意这些因素对系统的移动性产生了深远的影响,而该系统反过来又应决定基于C-GNRS的电子设备的性能。
From the moment atomic precision control of the growth process of graphene was achieved, more elaborated carbon allotropes were proposed opening new channels for flat optoelectronics at the nanoscale. A special type of this material presenting a V-shape (or "kinked" pattern) was recently synthesized and named Chevron-graphene nanoribbons (C-GNRs). To realize the reach of C--GNRs in developing new applications, the formation, and transport of charge carriers in their lattices should be primarily understood. Here, we investigate the static and dynamical properties of quasiparticles in C-GNRs. We study the effects of electron-phonon coupling and doping on the system. We also determine the kind of charge carriers present in C--GNR. It is observed that a phase transition occurs between a delocalized regime of conduction and regimes mediated by charge carriers. Such a phase transition is highly dependent on the doping concentration. Remarkably, crucial differences from the transport in standard graphene nanoribbons are identified. These factors are noted to have a profound impact on the mobility on the system which, in turn, should decisively impact the performance of electronic devices based on C-GNRs.