论文标题

半导体微腔中的谐振隧穿二极管:建模THZ位移电流中的极化特征

Resonant tunneling diodes in semiconductor microcavities: modeling polaritonic features in the THz displacement current

论文作者

Destefani, Carlos F., Villani, Matteo, Cartoixà, Xavier, Feiginov, Michael, Oriols, Xavier

论文摘要

我们在这项工作中开发了一个简单的定性量子电子传输模型,在偶极子近似下的强光 - 耦合方案中,能够在时间依赖的电流中捕获偏振符号。分析了光腔内谐振隧穿二极管的位移电流中量化电磁场的影响。由于谐振电子 - 光子相互作用,裸电子传输系数的原始峰分为两个新峰,从而导致在强耦合方面在系统中开发的极化状态之间的连贯的Rabi振荡。这种模仿封闭系统中Jaynes-Cummings模型预测的已知效果,并显示了对电子和电磁场的全面量子处理如何为工程新的THZ电子设备打开有趣的途径。通过调用Bohmian对轻度 - 象征相互作用的描述,可以解决参与THZ电流多时间测量的计算负担。我们还表明,用于表征直流量子电子设备的传统静态传输系数必须用高频AC场景中的新位移电流系数代替。

We develop in this work a simple qualitative quantum electron transport model, in the strong light-matter coupling regime under dipole approximation, able to capture polaritonic signatures in the time-dependent electrical current. The effect of the quantized electromagnetic field in the displacement current of a resonant tunneling diode inside an optical cavity is analyzed. The original peaks of the bare electron transmission coefficient split into two new peaks due to the resonant electron-photon interaction, leading to coherent Rabi oscillations among the polaritonic states that are developed in the system in the strong coupling regime. This mimics known effects predicted by a Jaynes-Cummings model in closed systems, and shows how a full quantum treatment of electrons and electromagnetic fields may open interesting paths for engineering new THz electron devices. The computational burden involved in the multi-time measurements of THz currents is tackled by invoking a Bohmian description of the light-matter interaction. We also show that the traditional static transmission coefficient used to characterize DC quantum electron devices has to be substituted by a new displacement current coefficient in high-frequency AC scenarios.

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