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珀塞尔效应在通过量子点-腔量子电动力学系统的电流输运中的表现。

Manifestation of the Purcell Effect in Current Transport through a Dot-Cavity-QED System.

作者信息

Abdullah Nzar Rauf, Tang Chi-Shung, Manolescu Andrei, Gudmundsson Vidar

机构信息

Physics Department, College of Science, University of Sulaimani, Sulaimani 46001, Kurdistan Region, Iraq.

Komar Research Center, Komar University of Science and Technology, Sulaimani 46001, Kurdistan Region, Iraq.

出版信息

Nanomaterials (Basel). 2019 Jul 17;9(7):1023. doi: 10.3390/nano9071023.

Abstract

We study the transport properties of a wire-dot system coupled to a cavity and a photon reservoir. The system is considered to be microstructured from a two-dimensional electron gas in a GaAs heterostructure. The 3D photon cavity is active in the far-infrared or the terahertz regime. Tuning the photon energy, Rabi-resonant states emerge and in turn resonant current peaks are observed. We demonstrate the effects of the cavity-photon reservoir coupling, the mean photon number in the reservoir, the electron-photon coupling and the photon polarization on the intraband transitions occurring between the Rabi-resonant states, and on the corresponding resonant current peaks. The Rabi-splitting can be controlled by the photon polarization and the electron-photon coupling strength. In the selected range of the parameters, the electron-photon coupling and the cavity-environment coupling strengths, we observe the results of the Purcell effect enhancing the current peaks through the cavity by increasing the cavity-reservoir coupling, while they decrease with increasing electron-photon coupling. In addition, the resonant current peaks are also sensitive to the mean number of photons in the reservoir.

摘要

我们研究了一个与腔和光子库耦合的线点系统的输运性质。该系统被认为是由GaAs异质结构中的二维电子气微观结构而成。三维光子腔在远红外或太赫兹波段是有源的。通过调节光子能量,会出现拉比共振态,进而观察到共振电流峰。我们展示了腔-光子库耦合、库中的平均光子数、电子-光子耦合以及光子极化对拉比共振态之间发生的带内跃迁以及相应共振电流峰的影响。拉比分裂可以通过光子极化和电子-光子耦合强度来控制。在所选的参数范围内,即电子-光子耦合和腔-环境耦合强度范围内,我们观察到珀塞尔效应的结果,即通过增加腔-库耦合来增强通过腔的电流峰,而随着电子-光子耦合的增加它们会减小。此外,共振电流峰对库中的平均光子数也很敏感。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8965/6669877/5e4d8ba6519b/nanomaterials-09-01023-g001.jpg

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