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集成在平面波导上的多波长消色差金属透镜的逆设计

Inverse Design of Multi-Wavelength Achromatic Metalens Integrated On-Chip with Planar Waveguide.

作者信息

Podobrii Mikhail, Barulina Elena, Barulin Aleksandr

机构信息

Moscow Center for Advanced Studies, Kulakova Str. 20, 123592 Moscow, Russia.

出版信息

Nanomaterials (Basel). 2025 Aug 31;15(17):1337. doi: 10.3390/nano15171337.

Abstract

Waveguide-integrated metasurfaces offer a promising platform for ultracompact on-chip optical systems, enabling applications such as fluorescence sensing, holography, and near-eye displays. In particular, integrated achromatic metalenses that couple guided modes to free-space radiation are highly desirable for single-molecule fluorescence sensing, where high numerical aperture (NA), efficient light focusing, and consistent focal volume overlap across excitation and emission wavelengths are critical. However, designing integrated high-NA metalenses with multi-wavelength operation remains fundamentally challenging due to the wavelength-dependent propagation of guided modes. Here, we present an inverse design framework that simultaneously optimizes the geometries and positions of silicon nitride nanofins atop a slab waveguide to achieve diffraction-limited focusing at three wavelengths with unity NA. The resulting metalens outperforms conventional segmented designs in focusing efficiency and sidelobe suppression, particularly at wavelengths corresponding to the excitation and emission bands of the model fluorophore Alexa Fluor 647. Numerical analysis shows that the design yields a high molecule detection efficiency suitable for epi-fluorescence single-molecule sensing. This work highlights the potential of inverse-designed metalenses as a versatile on-chip platform for advanced applications in fluorescence spectroscopy, augmented reality, or optical trapping.

摘要

波导集成超表面为超紧凑片上光学系统提供了一个很有前景的平台,可实现诸如荧光传感、全息术和近眼显示等应用。特别是,将导模耦合到自由空间辐射的集成消色差金属透镜对于单分子荧光传感非常理想,在单分子荧光传感中,高数值孔径(NA)、高效光聚焦以及在激发和发射波长上一致的焦体积重叠至关重要。然而,由于导模的波长依赖性传播,设计具有多波长操作的集成高NA金属透镜仍然具有根本挑战性。在这里,我们提出了一个逆向设计框架,该框架同时优化平板波导顶部氮化硅纳米鳍的几何形状和位置,以在三个波长下实现具有单位NA的衍射极限聚焦。所得金属透镜在聚焦效率和旁瓣抑制方面优于传统的分段设计,特别是在与模型荧光团Alexa Fluor 647的激发和发射带对应的波长处。数值分析表明,该设计产生了适用于落射荧光单分子传感的高分子检测效率。这项工作突出了逆向设计金属透镜作为用于荧光光谱、增强现实或光镊等先进应用的通用片上平台的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e52/12430403/adf80e485654/nanomaterials-15-01337-g001.jpg

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