Dynamic control of spontaneous emission using magnetized InSb higher-order-mode antennas

Sina Aghili, Rasoul Alaee, Amirreza Ahmadnejad, Ehsan Mobini, Mohamadreza Mohamadpour, Carsten Rockstuhl, Ksenia Dolgaleva
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Abstract

We exploit InSb’s magnetic-induced optical properties to design THz sub-wavelength antennas that actively tune the radiative decay rates of dipole emitters at their proximity. The proposed designs include a spherical InSb antenna and a cylindrical Si-InSb hybrid antenna that demonstrate distinct behaviors. The former dramatically enhances both radiative and non-radiative decay rates in the epsilon-near-zero region due to the dominant contribution of the Zeeman splitting electric octupole mode. The latter realizes significant radiative decay rate enhancement via magnetic octupole mode, mitigating the quenching process and accelerating the photon production rate. A deep learning-based optimization of emitter positioning further enhances the quantum efficiency of the proposed hybrid system. These novel mechanisms are promising for tunable THz single-photon sources in integrated quantum networks.
利用磁化 InSb 高阶模式天线动态控制自发辐射
我们利用 InSb 的磁诱导光学特性设计了太赫兹亚波长天线,可主动调节邻近偶极子发射器的辐射衰减率。所提出的设计包括一个球形铟锡合金天线和一个圆柱形铟锡合金混合天线,这两种天线表现出截然不同的特性。由于泽曼分裂电八极模式的主要贡献,前者显著提高了ε-近零区的辐射和非辐射衰减率。后者通过磁性八极模式实现了辐射衰变率的显著增强,减轻了淬火过程并加快了光子产生率。基于深度学习的发射器定位优化进一步提高了拟议混合系统的量子效率。这些新型机制有望成为集成量子网络中的可调谐太赫兹单光子源。
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