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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >CMOS Luminescence Imager With Ambient Light Compensation and Lifetime to Frequency Conversion
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CMOS Luminescence Imager With Ambient Light Compensation and Lifetime to Frequency Conversion

机译:具有环境光补偿和寿命至频率转换的CMOS发光成像仪

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This paper presents a novel 32 × 64 CMOS image sensor for luminescence imaging with direct lifetime-dependent digital pulse frequency modulated output. Recently reported parasitic insensitive multicycle charge modulation scheme is applied to accumulate photon-generated charges in discrete programmable time windows over multiple exposures. An autoreset pulse serving as the digital output is generated by comparing the multicycle charge integrated output with a reference threshold. The detected luminescence's lifetime is extracted by monitoring the frequency in this digital pulse. To compensate for the background photocurrent generated by ambient light and built-in offset, a charge pump based calibration circuitry is also proposed. Driven by a 10-KHz clock signal with 20-μs pulse width as the integration time window, the proposed circuitry can achieve 93 Hz/(μW/cm2) responsivity and 19 nW/cm2resolution at 575 nm wavelength. It has lifetime resolution of 8 ns. The proposed sensor chip was applied for lifetime measurement of a Ru(dpp)3(PF6)2fluorescent sample whose lifetime was estimated to be 4.2 μs. A two-dimensional luminescence intensity and lifetime images of a single white LED have also been obtained to further validate its functionality.
机译:本文提出了一种新颖的用于发光成像的32×64 CMOS图像传感器,具有直接取决于寿命的数字脉冲频率调制输出。最近报道的寄生不敏感多周期电荷调制方案被应用于在多次曝光的离散可编程时间窗口中累积光子产生的电荷。通过将多周期电荷积分输出与参考阈值进行比较,可以生成用作数字输出的自动复位脉冲。通过监视此数字脉冲中的频率来提取检测到的发光寿命。为了补偿环境光和内置偏移产生的背景光电流,还提出了基于电荷泵的校准电路。所提出的电路由具有20μs脉冲宽度的10KHz时钟信号作为积分时间窗口来驱动,可以达到93Hz /(μW/ cm n 。 org / 1998 / Math / MathML “ xmlns:xlink = ” http://www.w3.org/1999/xlink “> 2 n)响应度和19 nW / cm n 2 在575 nm波长处的分辨率。它的使用寿命分辨率为8 ns。提出的传感器芯片被用于Ru(dpp) n 3(PF 6 n) n 2 n荧光样品,其寿命估计为4.2μs。还获得了单个白光LED的二维发光强度和寿命图像,以进一步验证其功能。

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