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Nonlinear Quantum Motions in 2D Nano-channels. Part I: Complex Potential and Quantum Trajectories

机译:二维纳米通道中的非线性量子运动。第一部分:复数势能和量子轨迹

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摘要

As the size of electronic devices is narrowed down to the nanoscale, quantum effects become so prominent that the conventional Newton mechanics is no longer able to provide an accurate description for the electrons moving in nanostructures. On the other hand, the probabilistic description provided by quantum mechanics requires a large enough ensemble of electrons to yield the representative mean motion consistent with probability prediction. However, in some nanoelectronic devices, moving electrons may be so few that they do not averagely exhibit the mean motion predicted from quantum mechanics. Under such a circumstance, we need a new method that can describe not only the particle behavior of an individual electron, but also the wave behavior of an ensemble of electrons. In this paper, the complex-valued Newton mechanics is shown to possess the desired ability of manifesting the wave-particle duality of electrons moving in nanostructures. The first part of this paper establishes the nonlinear quantum dynamics characterizing the motion of individual electrons and finds their quantum trajectories in the presence of channelized quantum potential. The second part is devoted to showing how the collective motion of electrons yields the phenomenon of conductance quantization and the various wave behaviors such as tunneling, transmission and reflection within narrow-channel nanostructures.
机译:随着电子设备的尺寸缩小到纳米级,量子效应变得如此突出,以至于传统的牛顿力学不再能够为在纳米结构中移动的电子提供准确的描述。另一方面,量子力学提供的概率描述需要足够大的电子集合以产生与概率预测一致的代表性平均运动。但是,在某些纳米电子设备中,移动电子可能很少,以至于它们无法平均显示出量子力学所预测的平均运动。在这种情况下,我们需要一种新的方法,该方法不仅可以描述单个电子的粒子行为,而且可以描述电子整体的波行为。在本文中,复值牛顿力学被证明具有表现出在纳米结构中移动的电子的波粒二象性的理想能力。本文的第一部分建立了表征单个电子运动的非线性量子动力学,并在存在沟道化量子势的情况下找到了它们的量子轨迹。第二部分致力于显示电子的集体运动如何产生电导量化现象以及窄通道纳米结构内的各种波行为,例如隧穿,透射和反射。

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