Quantum Transport Properties of Two-Dimensional Quantum Lattices under Synthetic Magnetic

Pubudu G. Wijesinghe, K. Gamalath
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Abstract

Motivated by recent experimental progress, we study the quantum transport properties of two-dimensional electron gases under high perpendicular magnetic fields. We use a simple tight-binding model to model the system and open-source software to simulate quantum electronic transport properties such as band structure variations and conductance-flux relationships in such systems. Dependence of quantum transport properties on two-dimensional square, triangular and kagome lattice shapes were studied adding a Gaussian noise to account for the impurities. Numerical simulations are presented to predict the emergence of physical effects related to quantum Hall effect, such as the existence of Landau levels and edge states. The kagome lattice exhibits a different band structure giving rise to a flat band, due to its trihexagonal geometry. The peak conductance value increases with decreasing lattice constant due to higher transmission probability. The transport properties vary significantly with lattice geometries, both with the lattice type and the lattice constant.
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合成磁作用下二维量子晶格的量子输运性质
受近年来实验进展的启发,我们研究了高垂直磁场下二维电子气体的量子输运性质。我们使用一个简单的紧密结合模型来模拟系统,并使用开源软件来模拟量子电子输运特性,如这种系统中的能带结构变化和电导-通量关系。研究了量子输运性质与二维正方形、三角形和kagome晶格形状的关系,并加入高斯噪声来解释杂质。用数值模拟方法预测了与量子霍尔效应有关的物理效应的出现,如朗道能级和边缘态的存在。由于其三六边形的几何结构,kagome晶格表现出不同的能带结构,从而产生平坦的能带。由于传输概率较高,峰值电导值随晶格常数的减小而增大。输运性质随晶格几何形状的不同而显著变化,包括晶格类型和晶格常数。
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