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Design and performance of single photon APD focal plane arrays for 3-D LADAR imaging

机译:用于3-D LADAR成像的单光子APD焦平面阵列的设计和性能

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We describe the design, fabrication, and performance of focal plane arrays (FPAs) for use in 3-D LADAR imaging applications requiring single photon sensitivity. These 32 x 32 FPAs provide high-efficiency single photon sensitivity for three-dimensional LADAR imaging applications at 1064 run. Our GmAPD arrays are designed using a planar-passivated avalanche photodiode device platform with buried p-n junctions that has demonstrated excellent performance uniformity, operational stability, and long-term reliability. The core of the FPA is a chip stack formed by hybridizing the GmAPD photodiode array to a custom CMOS read-out integrated circuit (ROIC) and attaching a precision-aligned GaP microlens array (MLA) to the back-illuminated detector array. Each ROIC pixel includes an active quenching circuit governing Geiger-mode operation of the corresponding avalanche photodiode pixel as well as a pseudo-random counter to capture per-pixel time-of-flight timestamps in each frame. The FPA has been designed to operate at frame rates as high as 186 kHz for 2 |j.s range gates. Effective single photon detection efficiencies as high as 40% (including all optical transmission and MLA losses) are achieved for dark count rates below 20 kHz. For these planar-geometry diffused-junction GmAPDs, isolation trenches are used to reduce crosstalk due to hot carrier luminescence effects during avalanche events, and we present details of the crosstalk performance for different operating conditions. Direct measurement of temporal probability distribution functions due to cumulative timing uncertainties of the GmAPDs and ROIC circuitry has demonstrated a FWHM timing jitter as low as 265 ps (standard deviation is ~ 100 ps).
机译:我们描述焦平面阵列(FPA)的设计,制造和性能,用于需要单光子灵敏度的3-D LADAR成像应用。这些32 x 32 FPA在1064运行时为三维LADAR成像应用提供了高效的单光子灵敏度。我们的GmAPD阵列是使用具有掩埋p-n结的平面钝化雪崩光电二极管器件平台设计的,该平台已证明具有出色的性能均匀性,操作稳定性和长期可靠性。 FPA的核心是通过将GmAPD光电二极管阵列与定制的CMOS读出集成电路(ROIC)混合并将精密对准的GaP微透镜阵列(MLA)附加到背照式探测器阵列而形成的芯片堆栈。每个ROIC像素都包括一个有源淬灭电路,该电路用于控制相应雪崩光电二极管像素的Geiger模式操作,以及一个伪随机计数器,用于捕获每个帧中每个像素的飞行时间时间戳。 FPA被设计为以2 s.s的距离门以高达186 kHz的帧速率工作。对于低于20 kHz的暗计数速率,有效的单光子检测效率高达40%(包括所有光传输和MLA损耗)。对于这些平面几何形状的扩散结GmAPD,在雪崩事件期间使用隔离沟槽来减少由于热载流子发光效应引起的串扰,并且我们给出了不同工作条件下串扰性能的详细信息。由于GmAPD和ROIC电路的累积时序不确定性,对时间概率分布函数的直接测量已证明FWHM时序抖动低至265 ps(标准偏差为〜100 ps)。

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