Fei Jinhao, Zhang Xiaobei, Zhang Qi, Yang Yong, Wang Zijie, Deng Chuanlu, Huang Yi, Wang Tingyun
Key Laboratory of Specialty Fiber Optics and Optical Access Networks, Joint International Research Laboratory of Specialty Fiber Optics and Advanced Communication, Shanghai Institute for Advanced Communication and Data Science, School of Communication and Information Engineering, Shanghai University, Shanghai, 200444, China.
Front Optoelectron. 2024 Aug 8;17(1):27. doi: 10.1007/s12200-024-00131-5.
In this paper, we propose a deformed Reuleaux-triangle resonator (RTR) to form exceptional point (EP) which results in the detection sensitivity enhancement of nanoparticle. After introducing single nanoparticle to the deformed RTR at EP, frequency splitting obtains an enhancement of more than 6 times compared with non-deformed RTR. In addition, EP induced a result that the far field pattern of chiral mode responses significantly to external perturbation, corresponding to the change in internal chirality. Therefore, single nanoparticle with far distance of more than 4000 nm can be detected by measuring the variation of far field directional emission. Compared to traditional frequency splitting, the far field pattern produced in deformed RTR provides a cost-effective and convenient path to detect single nanoparticle at a long distance, without using tunable laser and external coupler. Our structure indicates great potential in high sensitivity sensor and label-free detector.
在本文中,我们提出了一种变形的勒洛三角形谐振器(RTR)来形成奇异点(EP),这导致了纳米颗粒检测灵敏度的提高。在奇异点处将单个纳米颗粒引入变形的RTR后,与未变形的RTR相比,频率分裂增强了6倍以上。此外,奇异点导致手性模式响应的远场模式对外部扰动有显著响应,这与内部手性的变化相对应。因此,通过测量远场定向发射的变化,可以检测到距离超过4000 nm的单个纳米颗粒。与传统的频率分裂相比,变形RTR中产生的远场模式提供了一种经济高效且便捷的途径,无需使用可调谐激光器和外部耦合器即可在远距离检测单个纳米颗粒。我们的结构在高灵敏度传感器和无标记探测器方面显示出巨大潜力。