论文标题
磷酸量子点中的Wigner分子
Wigner molecules in phosphorene quantum dots
论文作者
论文摘要
我们研究了磷酸量子点中电子系统的Wigner结晶,并将静电起源与圆形和伸长的几何形状限制在一起。有效质量的各向异性允许在实验室框架中形成Wigner分子,其密度密度低于限制电位。我们发现,在圆形量子点中,分开的单电子岛是针对两个和四个限制电子的,而不是三个被困的载体。讨论了通过传输光谱解决的Wigner结晶的光谱特征。具有Wigner分子状态的系统的特征是$ B = 0 $的几乎退化的基态,并且很容易被外部磁场旋转。在未形成单电子岛的电子系统中,观察到激发态在$ b = 0 $的更均匀分布,并且密闭系统在1特斯拉的磁场处进行基态对称性转变。圆形量子点中五个电子的系统被指示为特殊情况,随着磁场的更改,出现在地面中的两个电荷构型:一个是在实验室框架中形成的单个电子岛,另一个仅在系统内部坐标中的成对相关函数在系统的内部坐标中具有分子形式,用于三个电子。准形式的Wigner分子的形成更容易,对于沿着曲折方向的细长量子点的取向,具有较重的电子质量。沿扶手椅方向较小的电子有效质量可以冻结电子运动中的横向自由度。
We study Wigner crystallization of electron systems in phosphorene quantum dots with confinement of an electrostatic origin with both circular and elongated geometry. The anisotropy of the effective mass allows for the formation of Wigner molecules in the laboratory frame with a confined charge density that has lower symmetry than the confinement potential. We find that in circular quantum dots separate single-electron islands are formed for two and four confined electrons but not for three trapped carriers. The spectral signatures of the Wigner crystallization to be resolved by transport spectroscopy are discussed. Systems with Wigner molecule states are characterized by a nearly degenerate ground state at $B=0$ and are easily spin-polarized by the external magnetic field. In electron systems for which the single-electron islands are not formed, a more even distribution of excited states at $B=0$ is observed, and the confined system undergoes ground state symmetry transitions at magnetic fields of the order of 1 Tesla. The system of five electrons in a circular quantum dot is indicated as a special case with two charge configurations that appear in the ground-state as the magnetic field is changed: one with the single electron islands formed in the laboratory frame and the other where only the pair-correlation function in the inner coordinates of the system has a molecular form as for three electrons. The formation of Wigner molecules of quasi-1D form is easier for the orientation of elongated quantum dots along the zigzag direction with heavier electron mass. The smaller electron effective mass along the armchair direction allows for freezing out the transverse degree of freedom in the electron motion.