High‐Efficiency Multilevel Phase Lenses with Nanostructures on Polyimide Membranes

Author:

Howe Leslie1,Rajapaksha Tharindu D.1,Ellepola Kalani H.1,Ho Vinh X.1,Aycock Zachary1,Nguyen Minh L. P.1,Leckey John P.2,Macdonnell Dave G.2,Kim Hyun Jung2,Vinh Nguyen Q.1

Affiliation:

1. Department of Physics and Center for Soft Matter and Biological Physics Virginia Tech Blacksburg VA 24061 USA

2. NASA Langley Research Center Hampton VA 23681 USA

Abstract

AbstractThe emergence of planar meta‐lenses on flexible materials has profoundly impacted the long‐standing perception of diffractive optics. Despite their advantages, these lenses still face challenges in design and fabrication to obtain high focusing efficiency and resolving power. A nanofabrication technique is demonstrated based on photolithography and polyimide casting for realizing membrane‐based multilevel phase‐type Fresnel zone plates (FZPs) with high focusing efficiency. By employing advantageous techniques, these lenses with nanostructures are directly patterned into thin polyimide membranes. The computational and experimental results have indicated that the focusing efficiency of these nanostructures at the primary focus increases significantly with increasing the number of phase levels. Specifically, 16‐level phase lenses on a polyimide membrane can achieve a focusing efficiency of more than 91.6% of the input signal (9.5 times better than that of a conventional amplitude‐type FZP) and focus light into a diffraction‐limited spot together with very weak side‐lobes. Furthermore, these lenses exhibit considerably reduced unwanted diffraction orders and produce extremely low background signals. The potential impact of these lenses extends across various applications and techniques including microscopy, imaging, micro‐diffraction, remote sensing, and space flight instruments which require lightweight and flexible configurations.

Funder

Langley Research Center

Science Mission Directorate

NASA Earth Science Technology Office

Publisher

Wiley

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