| Literature DB >> 34293853 |
Houchao Zhang1, Tianyu Qi1, Xiaoyang Zhu1, Longjian Zhou1, Zhenghao Li1, Yuan-Fang Zhang2, Wenchao Yang1, Jianjun Yang1, Zilong Peng1, Guangming Zhang1, Fei Wang1, Pengfei Guo1, Hongbo Lan1.
Abstract
Cylindrical microlens arrays (CMLAs) play a key role in many optoelectronic devices, and 100% fill-factor CMLAs also have the advantage of improving the signal-to-noise ratio and avoiding stray-light effects. However, the existing preparation technologies are complicated and costly, which are not suitable for mass production. Herein, we propose a simple, efficient, and low-cost manufacturing method for CMLAs with a high fill-factor via the electric-field-driven (EFD) microscale 3D printing of polydimethylsiloxane (PDMS). By adjusting the printing parameters, the profile and the fill-factor of the CMLAs can be controlled to improve their optical performance. The optical performance test results show that the printed PDMS CMLAs have good image-projecting and light-diffraction properties. Using the two printing modes of this EFD microscale 3D-printing technology, a cylindrical dual-microlens array with a double-focusing function is simply prepared. At the same time, we print a series of specially shaped microlenses, proving the flexible manufacturing capabilities of this technology. The results show that the prepared CMLAs have good morphology and optical properties. The proposed method may provide a viable route for manufacturing large-area CMLAs with 100% fill-factor in a very simple, efficient, and low-cost manner.Entities:
Keywords: 3D printing; PDMS microlens array; cylindrical microlens array; electric-field-driven 3D printing; high fill-factor
Year: 2021 PMID: 34293853 DOI: 10.1021/acsami.1c08652
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229