Ma Y, Ballesteros G, Zajac J M, Sun J, Gerardot B D
Opt Lett. 2015 May 15;40(10):2373-6. doi: 10.1364/OL.40.002373.
We report the design of a solid-state, micron-sized hemispherical cavity that yields significantly enhanced extraction efficiency with modest Purcell enhancement from embedded quantum emitters. A simple analytical model provides a guideline for the design and optimization of the structure, while finite-difference time-domain simulations are used for full analysis of the optimum structure. Cavity modes with up to 90% extraction efficiency, a Purcell enhancement factor >2, and a quality factor of ≈50 are achieved. In addition, Gaussian-like far-field beam profiles with low divergence are exhibited for several modes. These monolithic cavities are promising for solid-state emitters buried in a high dielectric environment, such as self-assembled quantum dots and optically active defects in diamond.
我们报道了一种固态微米级半球形腔的设计,该腔能通过嵌入量子发射器实现适度的珀塞尔增强,从而显著提高提取效率。一个简单的解析模型为该结构的设计和优化提供了指导方针,而时域有限差分模拟则用于对最优结构进行全面分析。实现了提取效率高达90%、珀塞尔增强因子>2且品质因数约为50的腔模。此外,几种模式还展现出低发散的类高斯远场光束轮廓。这些单片腔对于埋置于高介电环境中的固态发射器很有前景,比如自组装量子点和金刚石中的光学活性缺陷。