论文标题

交叉的石墨烯纳米纤维作为梁拆分器和电子量子光学镜的镜子

Crossed graphene nanoribbons as beam splitters and mirrors for electron quantum optics

论文作者

Sanz, Sofia, Brandimarte, Pedro, Giedke, Géza, Sánchez-Portal, Daniel, Frederiksen, Thomas

论文摘要

我们从理论上分析了由两个交叉石墨烯纳米容器(GNR)组成的4端电子设备,并表明它们可以充当梁裂或镜子。这些特征是针对存在单个价或传导带的低能区域中的电子。我们的建模基于$ p_z $轨道的紧密结合,并带有slater-koster型矩阵元素,该矩阵元素拟合,可从密度功能理论计算中准确地重现低能带。我们系统地分析了可以在AA和AB堆栈中使用锯齿形或扶手椅GNR构建的所有设备。从绿色的功能理论中,弹性电子传输特性被定量作为色带宽度的函数。我们发现,由相对狭窄的曲折GNR和AA堆叠的扶手椅GNR组成的设备是实现两个即将离任端子中接近50-50比例的电子束分裂器的最有趣的候选者。带有宽带的结构提供了电子镜,其中电子波主要被转移到另一丝带的传出末端,或者散射敏感地取决于传播电子的波长。我们还测试了这些转运性能在交叉角度,堆叠模式,晶格变形(单轴应变),Inter-GNR分离和层之间的静电势差的鲁棒性。这些通用特征表明,GNR是构建电子量子光学设置的有趣基本组件。

We analyze theoretically 4-terminal electronic devices composed of two crossed graphene nanoribbons (GNRs) and show that they can function as beam splitters or mirrors. These features are identified for electrons in the low-energy region where a single valence or conduction band is present. Our modeling is based on $p_z$ orbital tight-binding with Slater--Koster type matrix elements fitted to accurately reproduce the low-energy bands from density functional theory calculations. We analyze systematically all devices that can be constructed with either zigzag or armchair GNRs in AA and AB stackings. From Green's function theory the elastic electron transport properties are quantified as a function of the ribbon width. We find that devices composed of relatively narrow zigzag GNRs and AA-stacked armchair GNRs are the most interesting candidates to realize electron beam splitters with a close to 50-50 ratio in the two outgoing terminals. Structures with wider ribbons instead provide electron mirrors, where the electron wave is mostly transferred into the outgoing terminal of the other ribbon, or electron filters where the scattering depends sensitively on the wavelength of the propagating electron. We also test the robustness of these transport properties against variations in intersection angle, stacking pattern, lattice deformation (uniaxial strain), inter-GNR separation, and electrostatic potential differences between the layers. These generic features show that GNRs are interesting basic components to construct electronic quantum optical setups.

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