Zanella Frédéric, Basset Guillaume, Schneider Christian, Luu-Dinh Angélique, Fricke Sören, Maria Madrigal Ana, Van Aken Dirk, Zahir Mustapha
Appl Opt. 2020 Apr 20;59(12):3636-3644. doi: 10.1364/AO.383454.
The optoelectronic properties of image sensors, among which are the photosensitivity and resolution, are key to the quality factors for imaging as well as spectrometry in Earth observation and scientific space exploration missions. Microlens arrays (MLAs) further improve state-of-the-art CMOS image sensors (CIS) by redirecting more photons into the photosensitive surface/volume of each pixel. This paper reports the design, deposition, optical characterization, and reliability assessment of such an MLA made from a UV-curable hybrid polymer and replicated on a packaged back-illuminated CIS having a pixel pitch of 15.5 µm. We find that such MLAs are highly stable to temperature variations, exposure to humidity, mechanical shocks and vibrations, as well as irradiation by gamma rays, while improving the parasitic light sensitivity by a factor of 1.8. Such MLAs can be applied on a large variety of image sensors, back-illuminated but mostly front-illuminated, with pixel pitches ranging from a few to several hundreds of micrometers, making them suitable for most specifications of the space industry.
图像传感器的光电特性,其中包括光敏性和分辨率,是地球观测和科学太空探索任务中成像以及光谱分析质量因素的关键。微透镜阵列(MLA)通过将更多光子重定向到每个像素的光敏表面/体积中,进一步提升了先进的互补金属氧化物半导体图像传感器(CIS)。本文报道了一种由可紫外固化的混合聚合物制成并复制在像素间距为15.5 µm的封装背照式CIS上的MLA的设计、沉积、光学表征和可靠性评估。我们发现,此类MLA对温度变化、湿度暴露、机械冲击和振动以及伽马射线照射具有高度稳定性,同时将寄生光灵敏度提高了1.8倍。此类MLA可应用于各种图像传感器,主要是背照式但大多为前照式,像素间距从几微米到几百微米不等,使其适用于太空行业的大多数规格要求。