论文标题

基于氯掺杂的ZnSE纳米柱的有效,可调节的单光子源

Efficient, Spectrally Tunable Single-Photon Sources Based on Chlorine-Doped ZnSe Nanopillars

论文作者

Kutovyi, Y., Jansen, M. M., Qiao, S., Falter, C., Driesch, N. von den, Brazda, T., Demarina, N., Trellenkamp, S., Bennemann, B., Grützmacher, D., Pawlis, A.

论文摘要

外延种植的半导体系统中的孤立杂质状态具有重要的辐射特征,例如独特的波长发射,具有非常短的辐射寿命和低均匀宽片的宽广,这使它们有望产生无法区分的单个光子。在这项研究中,我们研究了掺杂氯的ZnSE/Znmgse量子井(QW)纳米(NP)结构,作为在低温温度下运行的高效固态单光子源。我们表明,由于ZnSE QW中与中性CL原子结合的激发子的辐射重组而产生的单光子,并且可以将发射光子的能量从约2.85向下调节至2.82 eV,并从2.7 nm增加到ZnSE井宽度增加到4.7 nm。遵循开发的高级技术,我们使用直径约为250 nm的直径进行了NP,使用了外上有关ZnSE/Znmgse QW QW井结构的干燥和湿化学蚀刻的组合。与没有任何镜头相比,剩余的抗掩模是NP顶部的球形或圆柱形固体浸入透镜,并导致发射强度增强的数量级。带球形镜头的NP显示出最高的排放强度值。二阶相关函数的测量值在0.14的零时间延迟下确认了清晰的光子抗启动效果。开发的单光子源适合整合到可扩展的光子电路中。

Isolated impurity states in epitaxially grown semiconductor systems possess important radiative features such as distinct wavelength emission with a very short radiative lifetime and low inhomogeneous broadening which makes them promising for the generation of indistinguishable single photons. In this study, we investigate chlorine-doped ZnSe/ZnMgSe quantum well (QW) nanopillar (NP) structures as a highly efficient solid-state single-photon source operating at cryogenic temperatures. We show that single photons are generated due to the radiative recombination of excitons bound to neutral Cl atoms in ZnSe QW and the energy of the emitted photon can be tuned from about 2.85 down to 2.82 eV with ZnSe well width increase from 2.7 to 4.7 nm. Following the developed advanced technology we fabricate NPs with a diameter of about 250 nm using a combination of dry and wet-chemical etching of epitaxially grown ZnSe/ZnMgSe QW well structures. The remaining resist mask serves as a spherical- or cylindrical-shaped solid immersion lens on top of NPs and leads to the emission intensity enhancement by up to an order of magnitude in comparison to the pillars without any lenses. NPs with spherical-shaped lenses show the highest emission intensity values. The clear photon-antibunching effect is confirmed by the measured value of the second-order correlation function at a zero time delay of 0.14. The developed single-photon sources are suitable for integration into scalable photonic circuits.

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