Affiliation:
1. State Key Laboratory of Precision Spectroscopy School of Physics and Electronic Sciences East China Normal University Shanghai 200241 China
2. School of Physics and Mechatronic Engineering Guizhou Minzu University Guiyang 550025 China
3. School of Engineering and Technology University of New South Wales at Canberra Northcott Drive Canberra ACT 2610 Australia
Abstract
AbstractHarnessing the power of symmetry‐protected bound states in the continuum (SP BICs) has become a focal point in scientific exploration, promising many interesting applications in nanophotonics. However, the practical realization of ultrahigh quality (Q) factor quasi‐BICs (QBICs) is hindered by the fabrication imperfections. In this work, an easy approach is proposed to achieve ultrahigh‐Q resonances by strategically breaking symmetry. By introducing precise perturbations within the zero eigenfield region, QBICs with consistently ultrahigh‐Q factors, beyond conventional limitations are achieved. Intriguingly, intentionally disrupting symmetry in the maximum eigenfield region leads to a rapid decline in QBIC's Q‐factors as the asymmetry parameter increases. Leveraging this design strategy, ultrahigh‐Q modes with a high Q‐factor of 36,694 in a silicon photonic crystal slab are experimentally realized . The findings establish a robust and straightforward pathway toward unlocking the full potential of SP BICs, enhancing light‐matter interactions across diverse applications.
Funder
National Basic Research Program of China
National Natural Science Foundation of China
Science and Technology Commission of Shanghai Municipality
Shanghai Municipal Education Commission
Australian Research Council
Subject
Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials
Cited by
26 articles.
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