Yao Jin, Lai Fangxing, Fan Yubin, Wang Yuhan, Huang Shih-Hsiu, Leng Borui, Liang Yao, Lin Rong, Chen Shufan, Chen Mu Ku, Wu Pin Chieh, Xiao Shumin, Tsai Din Ping
Department of Electrical Engineering, City University of Hong Kong, Kowloon, Hong Kong SAR, China.
State Key Laboratory on Tunable Laser Technology, Ministry of Industry and Information Technology Key Lab of Micro-Nano Optoelectronic Information System, Shenzhen Graduate School, Harbin Institute of Technology, Shenzhen, 518055, China.
Nat Commun. 2024 Aug 2;15(1):6543. doi: 10.1038/s41467-024-50965-y.
Meta-lenses composed of artificial meta-atoms have stimulated substantial interest due to their compact and flexible wavefront shaping capabilities, outperforming bulk optical devices. The operating bandwidth is a critical factor determining the meta-lens' performance across various wavelengths. Meta-lenses that operate in a narrowband manner relying on nonlocal effects can effectively reduce disturbance and crosstalk from non-resonant wavelengths, making them well-suitable for specialized applications such as nonlinear generation and augmented reality/virtual reality display. However, nonlocal meta-lenses require striking a balance between local phase manipulation and nonlocal resonance excitation, which involves trade-offs among factors like quality-factor, efficiency, manipulation dimensions, and footprint. In this work, we experimentally demonstrate the nonlocal meta-lens featuring Huygens' bound states in the continuum (BICs) and its near-infrared imaging application. All-dielectric integrated-resonant unit is particularly optimized to efficiently induce both the quasi-BIC and generalized Kerker effect, while ensuring the rotation-angle robustness for generating geometric phase. The experimental results show that the single-layer nonlocal Huygens' meta-lens possesses a high quality-factor of 104 and achieves a transmission polarization conversion efficiency of 55%, exceeding the theoretical limit of 25%. The wavelength-selective two-dimensional focusing and imaging are demonstrated as well. This work will pave the way for efficient nonlocal wavefront shaping and meta-devices.
由人工元原子组成的超颖透镜因其紧凑且灵活的波前整形能力而引发了广泛关注,性能优于传统光学器件。工作带宽是决定超颖透镜在不同波长下性能的关键因素。基于非局域效应以窄带方式工作的超颖透镜能够有效减少非共振波长带来的干扰和串扰,非常适合用于诸如非线性产生以及增强现实/虚拟现实显示等特殊应用。然而,非局域超颖透镜需要在局部相位操控和非局域共振激发之间取得平衡,这涉及品质因数、效率、操控维度和尺寸等因素之间的权衡。在这项工作中,我们通过实验展示了具有连续统中的惠更斯束缚态(BICs)的非局域超颖透镜及其近红外成像应用。全介质集成谐振单元经过特别优化,既能有效诱导准BIC和广义克尔效应,又能确保生成几何相位时的旋转角度鲁棒性。实验结果表明,单层非局域惠更斯超颖透镜具有104的高品质因数,实现了55%的透射偏振转换效率,超过了25%的理论极限。同时还展示了波长选择性二维聚焦和成像。这项工作将为高效的非局域波前整形和超颖器件铺平道路。