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Ultra-Low Noise High Frame Rate ROIC for Visible and Infrared Focal Plane Arrays

机译:用于可见光和红外焦平面阵列的超低噪声高帧速率ROIC

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Recent advances in CMOS read-out integrated circuit (ROIC) design have helped achieve 10e- of read noise with single read and down to 5e- read noise with 32-pair Fowler sampling at slower astronomical frame rates. However, applications like adaptive optics pose even more stringent performance requirements on ROICs for visible and IR focal plane arrays (FPAs). Traditional pixel designs use circuits such as source followers, capacitive trans-impedance amplifiers (CTIA), and buffered-direct injection (BDI) for detector charge integration and readout. Currently these techniques by themselves do not achieve sub lOe- read noise at high readout bandwidths. This paper describes circuit design advances and measured performance that enable ROICs with ultra-low noise readout (3-10e-) at signal bandwidths allowing KHz frame rate on 128x128 and larger arrays. Using deep sub-micron CMOS, high conversion gain has been designed in a small unit-cell area while keeping high bandwidth for reset and readout, and sufficiently low power dissipation to avoid MOSFET self-emission for background-limited sensitivity at ultra-low scene backgrounds. Measured performance of one of the pixel designs reported in detail shows a noise floor of 7e- with HgCdTe detector array, near identical to the design value.
机译:在CMOS的最新进展读出集成电路(ROIC)设计有助于实现与单个读读出噪声的10e-和向下5E-带32对福勒在较慢的天文帧速率采样噪声读取。然而,像自适应光学应用造成对ROICs为可见光和红外焦平面阵列(农民专业协会)更严格的性能要求。传统的像素设计中使用的电路,例如源极跟随器,电容跨阻抗放大器(CTIA),以及用于检测器的电荷积分和读出缓冲-直接喷射(BDI)。目前,这些技术本身并不实现分lOe-在高速读取带宽噪音读取。本文描述了电路设计的进步和​​所测量的性能,使与信号带宽允许在128×128和较大的阵列千赫帧速率超低噪声读出(3-10e-)ROICs。使用深亚微米CMOS,高转换增益已被设计在一个小单位单元面积,同时保持高带宽复位及读出,以及足够低的功耗,以避免MOSFET自发光为背景有限的灵敏度在超低场景背景。像素设计中的一个的测得的性能详细示出了报告的7e-与碲镉汞检测器阵列的本底噪声,几乎相同的设计值。

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