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High-speed CMOS Image Sensor for High-throughput Lensless Microfluidic Imaging System
Conference proceeding

High-speed CMOS Image Sensor for High-throughput Lensless Microfluidic Imaging System

Mei Yan, Xiwei Huang, Qixiang Jia, Revanth Nadipalli, Tongxi Wang, Yang Shang, Hao Yu, Minkyu Je, Kiatseng Yeo and Kiat Seng Yeo
SENSORS, CAMERAS, AND SYSTEMS FOR INDUSTRIAL AND SCIENTIFIC APPLICATIONS XIII, Vol.8298(1), pp.829804-8298012
Proceedings of SPIE
01/01/2012

Abstract

Engineering Engineering, Electrical & Electronic Imaging Science & Photographic Technology Optics Physical Sciences Science & Technology Technology
The integration of CMOS image sensor and microfluidics becomes a promising technology for point-of-care (POC) diagnosis. However, commercial image sensors usually have limited speed and low-light sensitivity. One high-speed and high-sensitivity CMOS image sensor chip is introduced in this paper, targeted for high-throughput microfluidic imaging system. Firstly, high speed image sensor architecture is introduced with design of column-parallel single-slope analog-to-digital converter (ADC) with digital correlated double sampling (CDS). The frame rate can be achieved to 2400 frames/second (fps) with resolution of 128x96 for high-throughput microfluidic imaging. Secondly, the designed system has superior low-light sensitivity, which is achieved by large pixel size (10 mu mx10 mu m, 56% fill factor). Pixel peak signal-noise-ratio (SNR) reaches to 50dB with 10dB improvement compared to the commercial pixel (2.2 mu mx2.2 mu m). The degradation of pixel resolution is compensated by super-resolution image processing algorithm. By reconstructing single image with multiple low-resolution frames, we can equivalently achieve 2 mu m resolution with physical 10 mu m pixel. Thirdly, the system-on-chip (SoC) integration results in a real-time controlled intelligent imaging system without expensive data storage and time-consuming computer analysis. This initial sensor prototype with timing-control makes it possible to develop high-throughput lensless microfluidic imaging system for POC diagnosis.

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