Lee Hwaseob, Chang Lorry, Kecebas Ali, Mao Dun, Xiao Yahui, Li Tiantian, Alù Andrea, Özdemir Sahin K, Gu Tingyi
Department of Electrical and Computer Engineering, University of Delaware, Newark, Delaware, 19716, USA.
Department of Engineering Science and Mechanics, Pennsylvania State University, University Park, PA, 16802, USA.
Light Sci Appl. 2025 Jan 9;14(1):45. doi: 10.1038/s41377-024-01686-w.
Exceptional points (EPs) have been extensively explored in mechanical, acoustic, plasmonic, and photonic systems. However, little is known about the role of EPs in tailoring the dynamic tunability of optical devices. A specific type of EPs known as chiral EPs has recently attracted much attention for controlling the flow of light and for building sensors with better responsivity. A recently demonstrated route to chiral EPs via lithographically defined symmetric Mie scatterers on the rim of resonators has not only provided the much-needed mechanical stability for studying chiral EPs, but also helped reduce losses originating from nanofabrication imperfections, facilitating the in-situ study of chiral EPs and their contribution to the dynamics and tunability of resonators. Here, we use asymmetric Mie scatterers to break the rotational symmetry of a microresonator, to demonstrate deterministic thermal tuning across a chiral EP, and to demonstrate EP-mediated chiral optical nonlinear response and efficient electro-optic tuning. Our results indicate asymmetric electro-optic modulation with up to 17 dB contrast at GHz and CMOS-compatible voltage levels. Such wafer-scale nano-manufacturing of chiral electro-optic modulators and the chiral EP-tailored tunning may facilitate new micro-resonator functionalities in quantum information processing, electromagnetic wave control, and optical interconnects.
异常点(EPs)已在机械、声学、等离子体和光子系统中得到广泛研究。然而,关于异常点在调整光学器件动态可调性方面的作用却知之甚少。一种被称为手性异常点的特定类型的异常点最近在控制光流和构建具有更好响应性的传感器方面引起了广泛关注。最近通过光刻定义的位于谐振器边缘的对称米氏散射体实现手性异常点的途径,不仅为研究手性异常点提供了急需的机械稳定性,还有助于减少源自纳米制造缺陷的损耗,促进了对手性异常点及其对谐振器动力学和可调性贡献的原位研究。在此,我们使用非对称米氏散射体来打破微谐振器的旋转对称性,以展示跨越手性异常点的确定性热调谐,并展示异常点介导的手性光学非线性响应和高效电光调谐。我们的结果表明,在GHz频率和CMOS兼容电压水平下,具有高达17 dB对比度的非对称电光调制。这种手性电光调制器的晶圆级纳米制造以及手性异常点定制调谐可能会促进量子信息处理、电磁波控制和光互连中的新型微谐振器功能。