Three dimensional Luneburg lens at optical frequencies achieved by laser direct writing technique (Conference Presentation)

X. Duan, Meiling Zheng
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Abstract

Luneburg lens is a fascinating gradient refractive index (GRIN) lens that can focus parallel light rays on a perfect geometrical point without aberration in geometrical optics, compared with conventional lens made of homogeneous dielectric materials with specially designed surfaces. Constructing a three dimensional (3D) Luneburg lens at optical frequencies is a challenging task due to the difficulty of fabricating the desired GRIN materials in the lab. Reported experimental realizations of Luneburg lens at optical frequencies are mainly based on two dimensional metamaterials structures, or plasmonic structures. Here, we present the first practical implementation of the 3D version of Luneburg lens at optical frequencies based on the effective medium approximation. The 3D Luneburg lens is designed with GRIN 3D simple cubic metamaterials (SCMs) structures, and fabricated with no-resonant dielectric metamaterials by laser direct writing method in the commercial negative photoresist IP-L. We have experimentally demonstrated the feasibility of tailoring inhomogeneous metamaterials structures to realize 3D Luneburg lens with the effective GRIN profiles. The effective refractive index has been spatially and gradually modified by tailoring the volume filling fraction of SCMs structures. Simulated and experimental results simultaneously exhibit interesting 3D ideal focusing performance of the 3D Luneburg lens for the infrared light at wavelengths of 6.25m. This study would provide the protocol for developing the 3D Luneburg lens with wide field-of-view and ideal focusing theoretically and experimentally, which would further prompt the potential applications in integrated light-coupled devices and lab-on-chip integrated biological sensors based on infrared light.
激光直写技术实现光学频率的三维鲁讷堡透镜(会议报告)
吕尼堡透镜(Luneburg lens)是一种独特的梯度折射率透镜(GRIN),它可以将平行光线聚焦在一个完美的几何点上而不会像差。由于难以在实验室中制造所需的GRIN材料,在光学频率下构建三维(3D)吕讷堡透镜是一项具有挑战性的任务。吕讷堡透镜在光学频率上的实验实现主要基于二维超材料结构或等离子体结构。在这里,我们提出了基于有效介质近似的光学频率下的第一个实际实现的三维版本的鲁讷堡透镜。采用GRIN三维简单立方超材料(SCMs)结构设计三维Luneburg透镜,并在商用负光刻胶IP-L中采用激光直写方法制备无谐振介质超材料。我们通过实验证明了裁剪非均匀超材料结构以实现具有有效GRIN轮廓的三维Luneburg透镜的可行性。通过调整SCMs结构的体积填充率,可以在空间上逐步改变有效折射率。模拟和实验结果同时显示了三维鲁讷堡透镜对波长为6.25m的红外光具有有趣的三维理想聚焦性能。该研究将为开发具有宽视场和理想聚焦的三维吕尼堡透镜提供理论和实验依据,并进一步促进其在集成光耦合器件和基于红外光的片上集成生物传感器中的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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