论文标题
通过光子腔的电子传输中的自我诱导和磁效应
Self-induction and magnetic effects in electron transport through a photon cavity
论文作者
论文摘要
我们通过嵌入三维远红外光子腔中的二维纳米级电子系统探索传输中的高阶动力学效应。纳米级系统被认为是一条短量子线,具有在GAAS异质结构中定义的单个圆形量子点。整个系统,外部导线和中央系统被放置在恒定的垂直磁场中。电子的库仑相互作用,para和diamagnetic电子 - 光子相互作用均通过数值精确的对角线化处理,使用适当的多体卵形空间的逐步截断。我们专注于电偶极子近似中的描述与包括单个光子模式模型中所有高阶项的描述之间的传输属性差异。我们发现,主要由电二极管和磁偶极术语引起的小效应,这些偶极术语强烈取决于相对于传输方向和光子能的极化。当极化沿着传输方向对齐时,我们发现了我们分析和比较经典对应物的弱自我诱导的迹象,以及高阶相互作用项对通过系统途中的电子级联对州的自我能源贡献。像预期的那样,当偶极子近似中,当电子相互作用被外部磁场中腔内的纳米级系统的最低阶数磁性部分增强时。
We explore higher order dynamical effects in the transport through a two-dimensional nanoscale electron system embedded in a three-dimensional far-infrared photon cavity. The nanoscale system is considered to be a short quantum wire with a single circular quantum dot defined in a GaAs heterostructure. The whole system, the external leads and the central system are placed in a constant perpendicular magnetic field. The Coulomb interaction of the electrons, the para- and diamagnetic electron-photon interactions are all treated by a numerically exact diagonalization using step-wise truncations of the appropriate many-body Fock spaces. We focus on the difference in transport properties between a description within an electric dipole approximation and a description including all higher order terms in a single photon mode model. We find small effects mostly caused by an electrical quadrupole and a magnetic dipole terms that depend strongly on the polarization of the cavity field with respect to the transport direction and the photon energy. When the polarization is aligned along the transport direction we find indications of a weak self-induction that we analyze and compare to the classical counterpart, and the self-energy contribution of high-order interaction terms to the states the electrons cascade through on their way through the system. Like expected the electron-photon interaction is well described in the dipole approximation when it is augmented by the lowest order diamagnetic part for a nanoscale system in a cavity in an external magnetic field.