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首页> 外文期刊>Journal of Physics. Condensed Matter >Barrier tunneling of the loop-nodal semimetal in the hyperhoneycomb lattice
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Barrier tunneling of the loop-nodal semimetal in the hyperhoneycomb lattice

机译:HyperhoneyComb格子中环形节点半型屏障隧道的障碍隧道

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We theoretically investigate the barrier tunneling in the 3D model of the hyperhoneycomb lattice, which is a nodal-line semimetal with a Dirac loop at zero energy. In the presence of a rectangular potential, the scattering amplitudes for different injecting states around the nodal loop are calculated, by using analytical treatments of the effective model, as well as numerical simulations of the tight binding model. In the low energy regime, states with remarkable transmissions are only concentrated in a small range around the loop plane. When the momentum of the injecting electron is coplanar with the nodal loop, nearly perfect transmissions can occur for a large range of injecting azimuthal angles if the potential is not high. For higher potential energies, the transmission shows a resonant oscillation with the potential, but still with peaks being perfect transmissions that do not decay with the potential width. These strikingly robust transports of the loop-nodal semimetal can be approximately explained by a momentum dependent Dirac Hamiltonian.
机译:理论上,从HyperhoneyComb格子的3D模型中理论上研究了障碍隧道,这是一个零能量下的狄拉克环的结节线。在存在矩形电位的情况下,通过使用有效模型的分析处理以及紧密结合模型的数值模拟来计算用于不同注射状态的不同注射状态的散射幅度。在低能量方案中,具有显着变速器的状态仅集中在环路平面周围的一个小范围内。当注射电子的动量与节点环共同,如果电位不高,则可以发生几乎完美的传输,以发生大范围的喷射方位角。对于较高的电位能量,传输显示出具有潜力的谐振振荡,但仍然具有峰值是完美的变速器,其不会衰减电位宽度。这些引人注目的循环半球形的巨大运输可以大致通过血管依赖的Dirac Hamiltonian解释。

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