材料科学
纳秒
电介质
光子
光电子学
诺共振
法诺平面
纳米光子学
光学
等离子体子
物理
激光器
数学
纯数学
作者
Shu An,Dmitry Kalashnikov,Wenqiao Shi,Zackaria Mahfoud,Ah Bian Chew,Yan Liu,Jing Wu,Di Zhu,Weibo Gao,Cheng‐Wei Qiu,Victor Leong,Zhaogang Dong
标识
DOI:10.1002/adfm.202425343
摘要
Abstract Solid‐state quantum emitters are essential sources of single photons, and enhancing their emission rates is of paramount importance for applications in quantum communications, computing, and metrology. One approach is to couple quantum emitters with resonant photonic nanostructures, where the emission rate is enhanced due to the Purcell effect. Dielectric nanoantennas are promising as they provide strong emission enhancement compared to plasmonic ones, which suffer from high Ohmic loss. Here, a dielectric Fano resonator is designed and fabricated based on a pair of silicon (Si) ellipses and a disk, which supports the mode hybridization between quasi‐bound‐states‐in‐the‐continuum (quasi‐BIC) and Mie resonance. The performance of the developed resonant system is demonstrated by interfacing it with single photon emitters (SPEs) based on nitrogen‐vacancy (NV) centers in nanodiamonds (NDs). It is observed that the interfaced emitters have a Purcell enhancement factor of ≈10, with sub‐ns emission lifetime and a polarization contrast of 9. The results indicate a promising method for developing efficient and compact single‐photon sources for integrated quantum photonics applications.
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