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Gravity-immune liquid-filled tunable lens with reduced spherical aberration

2016/09/20 by Pengpeng Zhao, Çağlar Ataman, Ç‪ağlar Ataman +1 · 2 citations
Engineering · #Advanced optical system design #Electrowetting and Microfluidic Technologies #Lens (geology) #Materials science #Optical Wireless Communication Technologies #Optics #Physics #Refractive index #Spherical aberration

paper · doi:10.1364/ao.55.007816

openalex publication_date 2016/09/20 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/23

Abstract

The performance of uniform-thickness membrane lenses is severely compromised due to the inherent trade-off between spherical aberration and the sensitivity to gravity effects. This problem can be eliminated by engineering the membrane thickness profile such that a membrane stiff enough to withstand gravity-induced deformations can be shaped into a perfect optical surface under uniform pressure load. We present here a membrane-based liquid-tunable aspherical lens capable of diffraction-limited performance at nominal focal length, with two orders-of-magnitude smaller wavefront error compared to conventional tunable lenses, regardless of the lens orientation, by use of a non-uniform thickness profile of the flexible membrane. The lens has an aperture size of 3 mm, with a nominal focal length of 8 mm and a theoretical diffraction-limited tuning range between 7.2 and 8.8 mm. Between 6 and 12 mm, the cutoff frequency remains above 50% of the diffraction limit, demonstrating a drastic reduction in spherical aberration compared to conventional liquid-tunable lenses.

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