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Photodiode Bridge-Based Differential Readout Circuit for High-Sensitivity Measurements of Energy Variations of Laser Pulses for Optoelectronic Sensing Systems

机译:基于光电二桥的差分读出电路,用于光电传感系统激光脉冲的能量变化的高灵敏度测量

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In this paper we present an optoelectronic architecture based on a current-mode photodiode bridge readout circuit that performs differential measurements of the energy variations of nanosecond laser pulses. This operation is achieved by differentially detecting the currents photogenerated by two Si photodiodes one of which is used as the reference signal and the other measures the signal coming from variations of the laser pulse energy. The circuit has been designed for high-speed operations (i.e., large bandwidth) and its features can be simply optimised as a function of the laser pulse-width (e.g., in the nanosecond and subnanosecond regime) and of its repetition rate from few Hz up to few MHz. Moreover, the electronic circuitry allows to achieve the initial photodiode bridge balancing condition by variable control voltages so zeroing the overall interface offsets due to optical and electronic device mismatches and initial bridge unbalance conditions. The readout circuit has been fully characterised by performing both electrical and optical measurements and by varying its gain, detection sensitivity and energy-per-pulse changes between the signal and the reference employing 10ns laser pulses at a repetition rate of 20Hz. These measurements have been compared with those ones obtained using a standard commercial lock-in amplifier as the conditioning circuit under the same experimental conditions. The proposed optoelectronic architecture is able to reach a maximum detection sensitivity of 7m V/ fJ corresponding to a detection resolution of the laser pulse energy variations equal to 0.14 × 10-3 fJ. These results prove an increase of 1225 in the detection sensitivity and resolution obtained by employing a lock-in amplifier in a differential measurement configuration.
机译:在本文中,我们介绍了一种基于电流模式光电二极管桥读出电路的光电架构,其执行纳秒激光脉冲的能量变化的差分测量。通过差异地检测由两个Si光电二极管光发射的电流用作参考信号的电流来实现该操作,并且另一个测量来自激光脉冲能量的变型的信号。该电路专为高速操作(即,大带宽)而设计,其特征可以简单地作为激光脉冲宽度(例如,在纳秒和亚译)中的功能和其重复率从少数Hz进行优化高达很少的MHz。此外,电子电路允许通过可变控制电压实现初始光电二极管桥平衡条件,使得由于光学和电子设备不匹配和初始桥梁不平衡条件而归零整个接口偏移。读出电路通过执行电气和光学测量并通过在20Hz的重复率下改变信号和参考,通过改变其增益,检测灵敏度和能量脉冲变化来完全表征。将这些测量与在相同的实验条件下使用标准商业锁定放大器作为调节电路获得的那些测量进行了比较。所提出的光电架构能够达到7M V / FJ的最大检测灵敏度,其对应于等于0.14×10的激光脉冲能量变化的检测分辨率 -3 缩略词。这些结果在通过在差分测量配置中采用锁定放大器获得的检测灵敏度和分辨率增加1225。

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