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紫外区域的偏振不敏感、宽带、近衍射极限超表面透镜

Polarization Insensitive, Broadband, Near Diffraction-Limited Metalens in Ultraviolet Region.

作者信息

Kanwal Saima, Wen Jing, Yu Binbin, Chen Xu, Kumar Dileep, Kang Yi, Bai Chunyan, Ubaid Saima, Zhang Dawei

机构信息

Engineering Research Center of Optical Instrument and Systems, Ministry of Education and Shanghai Key Lab of Modern Optical System, University of Shanghai for Science and Technology, No. 516 Jun Gong Road, Shanghai 200093, China.

State Key Laboratory of Industrial Control Technology, College of Control Science and Engineering, Zhejiang University, Hangzhou 310027, China.

出版信息

Nanomaterials (Basel). 2020 Jul 23;10(8):1439. doi: 10.3390/nano10081439.

Abstract

Metasurfaces in the ultraviolet spectrum have stirred up prevalent research interest due to the increasing demand for ultra-compact and wearable UV optical systems. The limitations of conventional plasmonic metasurfaces operating in transmission mode can be overcome by using a suitable dielectric material. A metalens holds promising wavefront engineering for various applications. Metalenses have developed a breakthrough technology in the advancement of integrated and miniaturized optical devices. However, metalenses utilizing the Pancharatnam-Berry (PB) phase or resonance tuning methodology are restricted to polarization dependence and for various applications, polarization-insensitive metalenses are highly desirable. We propose the design of a high-efficiency dielectric polarization-insensitive UV metalens utilizing cylindrical nanopillars with strong focusing ability, providing full phase delay in a broadband range of Ultraviolet light (270-380 nm). The designed metalens comprises Silicon nitride cylindrical nanopillars with spatially varying radii and offers outstanding polarization-insensitive operation in the broadband UV spectrum. It will significantly promote and boost the integration and miniaturization of the UV photonic devices by overcoming the use of Plasmonics structures that are vulnerable to the absorption and ohmic losses of the metals. The focusing efficiency of the designed metalens is as high as 40%.

摘要

由于对超紧凑和可穿戴紫外光学系统的需求不断增加,紫外光谱中的超表面引发了广泛的研究兴趣。通过使用合适的介电材料,可以克服传统传输模式下等离子体超表面的局限性。金属透镜在各种应用中具有很有前景的波前工程。金属透镜在集成和小型化光学器件的发展中已经开发出一种突破性技术。然而,利用潘查拉特纳姆-贝里(PB)相位或共振调谐方法的金属透镜受到偏振依赖性的限制,对于各种应用来说,高度需要偏振不敏感的金属透镜。我们提出了一种利用具有强聚焦能力的圆柱形纳米柱的高效介电偏振不敏感紫外金属透镜的设计,在宽带紫外光(270 - 380纳米)范围内提供全相位延迟。所设计的金属透镜由具有空间变化半径的氮化硅圆柱形纳米柱组成,并在宽带紫外光谱中提供出色的偏振不敏感操作。通过克服易受金属吸收和欧姆损耗影响的等离子体结构的使用,它将显著促进和推动紫外光子器件的集成和小型化。所设计的金属透镜的聚焦效率高达40%。

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