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Readout circuit design for noise-based photodetection

机译:用于基于噪声的光电检测的读出电路设计

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Signal from a photoconductive detector is usually provided by assessing the electrical current (photocurrent) that is obtained from the photo-excited carriers arising from the absorption process in the presence of an applied bias field. Usually when analyzing the signal from a photodetector the photocurrent noise is treated as an undesirable degree of imprecision carrying no information. We describe in details a readout circuit designed to access the electronic noise induced by the photo-absorption process in the photodetector, at zero bias voltage, and to convert it into a useful detection signal. The main required attributes for the electronics and the proper operational conditions are analysed and exemplified by simulation and experimental results. A basic readout circuit was implemented and their output-signal to imput-noise equivalence curve was characterized using a calibrated white-noise source. We propose and simulate a simple readout-integrated-circuit (ROIC) cell that can be scaled-down to a micrometer pixel level. The simulation results suggests the proposed ROIC cell allows the infrared-focal-plane-array (IRFPA) to be fabricated in a conventional 0.25 μm CMOS fabrication technology. The spectral response of two quantum-well infrared photodetectors (QWIPs), operating in the mid-wavelength infrared, could be obtained when two readout circuits was directly applied as interfaces of a FTIR spectrometer. Since noise is also present at equilibrium, when no bias voltage is applied and no net current flows through the device, this concept expand the use of photodetectors that have high internal quantum efficiency (good absorption) but not necessarily a high external efficiency (large photocurrent) and opens new possibilities for the design of novel types of photodetector heterostructures.
机译:来自光电导检测器的信号通常是通过评估在存在偏置电场的情况下从吸收过程中产生的光激发载流子获得的电流(光电流)来提供的。通常,当分析来自光电探测器的信号时,将光电流噪声视为不携带任何信息的不期望的不精确度。我们将详细描述一个读出电路,该电路设计用于在零偏置电压下访问光电探测器中由光吸收过程引起的电子噪声,并将其转换为有用的检测信号。通过仿真和实验结果分析并举例说明了电子设备的主要要求属性和适当的操作条件。实施了基本的读出电路,并使用校准的白噪声源表征了它们的输出信号至噪声等效曲线。我们提出并模拟了一个简单的读出集成电路(ROIC)单元,该单元可以按比例缩小到微米像素级。仿真结果表明,所提出的ROIC单元允许以传统的0.25μmCMOS制造技术制造红外焦平面阵列(IRFPA)。当将两个读出电路直接用作FTIR光谱仪的接口时,可以获得在中波长红外中工作的两个量子阱红外光电探测器(QWIP)的光谱响应。由于噪声也处于平衡状态,因此当不施加偏置电压且没有净电流流过器件时,此概念扩展了内部量子效率高(吸收良好)但不一定具有外部效率高(光电流大)的光电探测器的使用。 ),并为新颖类型的光电探测器异质结构的设计开辟了新的可能性。

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