Nonlocal meta-lens with Huygens’ bound states in the continuum

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. Met...

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Veröffentlicht in:Nature communications 2024-08, Vol.15 (1), p.6543-8, Article 6543
Hauptverfasser: 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
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Sprache:eng
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Zusammenfassung: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. Here, the authors demonstrate a nonlocal meta-lens featuring Huygen’s bound states in the continuum and experimentally realise this system for nearinfrared imaging. They show wavelength-selective two-dimensional focusing and imaging, paving the way for efficient nonlocal wavefront shaping.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-024-50965-y