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High count rate InGaAs/InP SPAD system with balanced SPAD-dummy approach running up to 1.4 GHz

机译:高计数率InGaAs / InP SPAD系统,采用平衡的SPAD虚拟方法,运行频率高达1.4 GHz

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The capability to achieve high count rates has become an imperative in the most areas where near-infrared single-photon counters are required to detect photons up to 1.7 μm. Hence, afterpulsing mitigation is a dominant theme in recent works concerning systems based on InGaAs/InP SPADs. Given the challenges inherent in reducing the density of defects that give rise to the carrier trapping events causing afterpulsing. the only viable approach is to reduce the potential number of carriers that can be trapped by limiting the charge flow per avalanche event. In this paper we present a sine-wave gating system based on the balanced detector configuration. The gate frequency is programmable in a wide range (1.0 - 1.6 GHz) for allowing synchronization with an external laser system and for exploring the best trade-off between afterpulsing and photon detection efficiency. The long-term stability can be achieved with a stable cancelation of the gate feedthrough. In this work this is guaranteed by a feedback loop that continuously monitors the residual output power at the gate frequency and adjusts the amplitude and phase of the two sinusoids fed to the SPAD-dummy couple.
机译:在大多数需要近红外单光子计数器来检测最大1.7μm的光子的区域中,实现高计数率的能力已成为当务之急。因此,在基于InGaAs / InP SPAD的系统的最新工作中,后脉冲缓解是一个主要主题。鉴于降低缺陷密度所固有的挑战,这些缺陷会引起引起俘获的载流子捕获事件。唯一可行的方法是通过限制每次雪崩事件的电荷流来减少可能被捕获的载流子数量。在本文中,我们提出了一种基于平衡探测器配置的正弦波门控系统。栅极频率可在很宽的范围(1.0-1.6 GHz)中进行编程,以允许与外部激光系统同步,并探索后脉冲和光子检测效率之间的最佳权衡。稳定取消栅极导通可以实现长期稳定性。在这项工作中,这是通过一个反馈环路来保证的,该环路连续监控栅极频率下的残余输出功率,并调节馈入SPAD虚拟对的两个正弦波的幅度和相位。

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