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基于自适应积分电容器的高动态像素结构

High Dynamic Pixel Structure Based on an Adaptive Integrating Capacitor.

作者信息

Liu Suiyang, Guo Zhongjie, Xu Ruiming, Yu Ningmei

机构信息

Department of Electronic Engineering, Xi'an University of Technology, No. 5, Jinhua South Road, Xi'an 710048, China.

出版信息

Sensors (Basel). 2023 Nov 9;23(22):9071. doi: 10.3390/s23229071.

Abstract

Infrared image sensing technology has received widespread attention due to its advantages of not being affected by the environment, good target recognition, and high anti-interference ability. However, with the improvement of the integration of the infrared focal plane, the dynamic range of the photoelectric system is difficult to improve, that is, the restrictive trade-off between noise and full well capacity is particularly prominent. Since the capacitance of the inversion MOS capacitor changes with the gate-source voltage adaptively, the inversion MOS capacitor is used as the capacitor in the infrared pixel circuit, which can solve the contradiction between noise in low light and full well capacity in high light. To this end, a highly dynamic pixel structure based on adaptive capacitance is proposed, so that the capacitance of the infrared image sensor can automatically change from 6.5 fF to 37.5 fF as the light intensity increases. And based on 55 nm CMOS process technology, the performance parameters of an infrared image sensor with a 12,288 × 12,288 pixel array are studied. The research results show that a small-size pixel of 5.5 µm × 5.5 µm has a large full well capacity of 1.31 Me and a variable conversion gain, with a noise of less than 0.43 e and a dynamic range of more than 130 dB.

摘要

红外图像传感技术因其不受环境影响、目标识别能力强和抗干扰能力高等优点而受到广泛关注。然而,随着红外焦平面集成度的提高,光电系统的动态范围难以提升,即噪声与满阱容量之间的权衡限制尤为突出。由于反型MOS电容器的电容会随栅源电压自适应变化,将反型MOS电容器用作红外像素电路中的电容,可以解决弱光下的噪声与强光下的满阱容量之间的矛盾。为此,提出了一种基于自适应电容的高动态像素结构,使红外图像传感器的电容能够随着光强增加而自动从6.5 fF变化到37.5 fF。并且基于55 nm CMOS工艺技术,研究了具有12288×12288像素阵列的红外图像传感器的性能参数。研究结果表明,尺寸为5.5 µm×5.5 µm的小尺寸像素具有1.31 Me的大满阱容量和可变转换增益,噪声小于0.43 e,动态范围超过130 dB。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/128b/10674220/9eab31307b77/sensors-23-09071-g001a.jpg

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