Shi Tan, Deng Zi-Lan, Geng Guangzhou, Zeng Xianzhi, Zeng Yixuan, Hu Guangwei, Overvig Adam, Li Junjie, Qiu Cheng-Wei, Alù Andrea, Kivshar Yuri S, Li Xiangping
Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Institute of Photonics Technology, Jinan University, 510632, Guangzhou, China.
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, 100191, Beijing, China.
Nat Commun. 2022 Jul 15;13(1):4111. doi: 10.1038/s41467-022-31877-1.
Optical metasurfaces with high quality factors (Q-factors) of chiral resonances can boost substantially light-matter interaction for various applications of chiral response in ultrathin, active, and nonlinear metadevices. However, current approaches lack the flexibility to enhance and tune the chirality and Q-factor simultaneously. Here, we suggest a design of chiral metasurface supporting bound state in the continuum (BIC) and demonstrate experimentally chiroptical responses with ultra-high Q-factors and near-perfect circular dichroism (CD = 0.93) at optical frequencies. We employ the symmetry-reduced meta-atoms with high birefringence supporting winding elliptical eigenstate polarizations with opposite helicity. It provides a convenient way for achieving the maximal planar chirality tuned by either breaking in-plane structure symmetry or changing illumination angle. Beyond linear CD, we also achieved strong near-field enhancement CD and near-unitary nonlinear CD in the same planar chiral metasurface design with circular eigen-polarization. Sharply resonant chirality realized in planar metasurfaces promises various practical applications including chiral lasers and chiral nonlinear filters.
具有手性共振高品质因数(Q 因子)的光学超表面可以显著增强光与物质的相互作用,以用于超薄、有源和非线性超器件中各种手性响应的应用。然而,目前的方法缺乏同时增强和调节手性及 Q 因子的灵活性。在此,我们提出一种支持连续统束缚态(BIC)的手性超表面设计,并通过实验证明了在光频下具有超高 Q 因子和近乎完美圆二色性(CD = 0.93)的手性光学响应。我们采用具有高双折射的对称性降低的超原子,其支持具有相反螺旋度的缠绕椭圆本征态偏振。这为通过打破面内结构对称性或改变照明角度来实现最大平面手性提供了一种便捷方式。除了线性 CD,我们还在具有圆本征偏振的相同平面手性超表面设计中实现了强近场增强 CD 和近乎单位的非线性 CD。平面超表面中实现的尖锐共振手性有望用于包括手性激光器和手性非线性滤波器在内的各种实际应用。