物理
自发辐射
谐振器
量子
塞尔效应
等离子体子
量子光学
电场
偶极子
磁场
量子成像
光学
光电子学
量子态
光发射
领域(数学)
工作(物理)
磁偶极子
量子传感器
斯塔克效应
欧姆接触
量子效率
分裂环谐振器
受激发射
超辐射
国家(计算机科学)
原子物理学
局域态密度
电磁场
作者
Jinwen Lv,Ye Fan,Yiqing Liu,Zaiyang Zheng,Z Xu
出处
期刊:Optics Letters
[Optica Publishing Group]
日期:2026-01-14
卷期号:51 (3): 708-708
摘要
Controlling spontaneous emission from electric dipole (ED) and magnetic dipole (MD) is crucial for quantum light sources, molecular sensing, and integrated quantum photonics. Enhancing these processes relies on intense local fields to boost the local density of optical states (LDOS). While conventional plasmonic structures provide strong fields, their performance is severely limited by inherent ohmic losses. We designed and experimentally verified a germanium-based metasurface exciting a nonradiative anapole state to overcome this limitation. This approach generates extreme near-field confinement, significantly strengthening light-matter interactions. We numerically demonstrate a dual-channel platform simultaneously accelerating ED and MD emissions at spatially distinct hot spots, reaching Purcell factors (PFs) of 6057 and 2272, respectively. The quality factor, field enhancement, and PF of the resonator are precisely tunable by adjusting its geometric parameters. This work provides a platform for dual-dipole emission engineering, paving the way for high-performance quantum light sources, molecular fingerprinting, and on-chip quantum devices in the mid-infrared.
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