Department of Electrophysics, National Chiao Tung University, Hsinchu 30010, Taiwan.
J Phys Condens Matter. 2010 Oct 6;22(39):395303. doi: 10.1088/0953-8984/22/39/395303. Epub 2010 Sep 10.
We have studied the linear conductance and source-drain bias spectroscopies of clean and disordered quantum wires (QWs) against thermal cycling and lateral shifting, which change the impurity configuration. Conductance quantization and the zero bias anomaly (ZBA) are robust in clean QWs. In contrast, disordered QWs show complexities in the ways of conductance resonance, peak splitting and trace crossing in source-drain bias spectroscopies. The experimental results and theoretical predictions are in congruence. Moreover, the resonant state arising from the impurities results in either a single peak or double-splitting peaks in the spectroscopies from the detailed impurity configurations. The resonant splitting peaks are found to influence the ZBA, indicating that a clean QW is crucial for investigating the intrinsic characteristics of the ZBA of QWs.
我们研究了线性电导和源漏偏压谱学,以对抗热循环和横向移动,这会改变杂质配置。在清洁量子线(QW)中,电导量子化和零偏压异常(ZBA)是稳健的。相比之下,无序量子线在源漏偏压谱学中表现出电导共振、峰分裂和迹线交叉的复杂性。实验结果与理论预测相符。此外,从杂质中产生的共振态导致在光谱中出现单个峰或双峰分裂峰,这取决于详细的杂质配置。发现共振分裂峰会影响 ZBA,表明清洁 QW 对于研究 ZBA 的内在特性至关重要。