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Dynamic Range Optimisation of CMOS Image Sensors dedicated to Space Applications

机译:专用于太空应用的CMOS图像传感器的动态范围优化

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摘要

Nowadays, CMOS image sensors are widely considered for space applications. Their performances have been significantly enhanced with the use of CIS (CMOS Image Sensor) processes in term of dark current, quantum efficiency and conversion gain. Dynamic Range (DR) remains an important parameter for a lot of applications. Most of the dynamic range limitation of CMOS image sensors comes from the pixel. During work performed in collaboration with EADS Astrium, SUPAERO/CIMI laboratory has studied different ways to improve dynamic range and test structures have been developed to perform analysis and characterisation. A first way to improve dynamic range will be described, consisting in improving the voltage swing at the pixel output. Test vehicles and process modifications made to improve voltage swing will be depicted. We have demonstrated a voltage swing improvement more than 30%. A second way to improve dynamic range is to reduce readout noise A new readout architecture has been developed to perform a correlated double sampling readout. Strong readout noise reduction will be demonstrated by measurements performed on our test vehicle. A third way to improve dynamic range is to control conversion gain value. Indeed, in 3 TMOS pixel structure, dynamic range is related to conversion gain through reset noise which is dependant of photodiode capacitance. Decrease and increase of conversion gain have been performed with different design techniques. A good control of the conversion gain will be demonstrated with variation in the range of 0.05 to 3 of initial conversion gain.
机译:如今,CMOS图像传感器已广泛用于太空应用。通过使用CIS(CMOS图像传感器)工艺,在暗电流,量子效率和转换增益方面,它们的性能得到了显着提高。动态范围(DR)仍然是许多应用程序的重要参数。 CMOS图像传感器的大多数动态范围限制都来自像素。在与EADS Astrium合作进行的工作中,SUPAERO / CIMI实验室研究了改善动态范围的不同方法,并开发了测试结构来进行分析和表征。将描述改善动态范围的第一方式,其包括改善像素输出处的电压摆幅。将描述测试车辆和为改善电压摆幅而进行的过程修改。我们已证明电压摆幅改善超过30%。改善动态范围的第二种方法是减少读出噪声。已经开发出一种新的读出体系结构来执行相关的双采样读出。通过在我们的测试车辆上进行的测量,可以证明可以显着降低读数噪声。改善动态范围的第三种方法是控制转换增益值。实际上,在3 TMOS像素结构中,动态范围与通过复位噪声产生的转换增益有关,该复位噪声取决于光电二极管电容。减少和增加转换增益已经用不同的设计技术进行了。在初始转换增益的0.05至3范围内变化时,将证明对转换增益的良好控制。

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