论文标题
从Bloch振荡到强烈偏置的介质设备中的稳态电流
From Bloch Oscillations to a Steady-State Current in Strongly Biased Mesoscopic Devices
论文作者
论文摘要
早就知道,量子颗粒在周期性的晶格中移动并受到恒定力场的影响,其振荡运动被称为Bloch振荡(BOS)。然而,众所周知,在相当普遍的条件下,与潜在客户相关的偏置介质系统应定居在以恒定电流为特征的稳态状态(由Landauer公式描述)。由于这两种效应都是由恒定场驱动的,因此这两个量子转运现象似乎相互矛盾。在这里,我们通过理论上证明BOS实际上可以在有偏见的两端介观设备中观察到BOS作为一种短暂现象,从而解决了BOS,从而解决了BOS,它可以长期放松到与Landauer公式一致的稳态电流。此外,我们还将分析和数值的时间进化结果结合在一起,为一个有偏见的两末端介质系统的一维紧密结合模型,以表征瞬态BOS的衰减时间并确定可能发生的条件。
It has long been known that quantum particles moving in a periodic lattice and subject to a constant force field undergo an oscillatory motion that is referred to as Bloch Oscillations (BOs). However, it is also known that, under quite general conditions, a biased mesoscopic system connected to leads should settle in a steady-state regime characterized by a constant electric current (described by the Landauer formula). Since both effects are driven by a constant field, these two quantum transport phenomena appear to be at odds with each other. Here, we solve this apparent contradiction by theoretically demonstrating that BOs can actually be observed in biased two-terminal mesoscopic devices as a transient phenomenon, which relaxes for long times to a steady-state current that agrees with the Landauer formula. Furthermore, we also combine analytical and numerical time-evolution results for a one-dimensional tight-binding model of a biased two-terminal mesoscopic system, in order to characterize the decay times of the transient BOs and establish the conditions under which they can occur.