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首页> 外文期刊>Journal of international management >Simulation of Silicon Waveguide Single-Photon Avalanche Detectors for Integrated Quantum Photonics
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Simulation of Silicon Waveguide Single-Photon Avalanche Detectors for Integrated Quantum Photonics

机译:硅波导单光子雪崩探测器仿真集成量子光子学

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Integrated quantum photonics is recognized as a key enabling technology on the road towards scalable quantum networking schemes. However, many state-of-the-art integrated quantum photonics demonstrations still require the coupling of light to external photodetectors. On-chip silicon single-photon avalanche diodes (SPADs) provide a viable solution as they can be seamlessly integrated with photonic components, and operated with high efficiencies and low dark counts at temperatures achievable with thermoelectric cooling. In this paper, we report the design and simulation of silicon waveguide-based SPADs on a silicon-oninsulator platform for visible wavelengths, focusing on two device families with different doping configurations: p-n(+) and p-i-n(+). We calculate the photon detection efficiency (PDE) and timing jitter at an input wavelength of 640 nm by simulating the avalanche process using a 2-D Monte Carlo method, as well as the dark count rate (DCR) at 243 K and 300 K. For our simulated parameters, the optimal p-i-n(+) SPADs show the hest device performance, with a saturated PDE of 52.4 +/- 0.6% at a reverse bias voltage of 31.5 V, full-width-half-max (FWHM) timing jitter of 10 ps, and a DCR of <5 counts per second at 243 K.
机译:集成量子光子图案被认为是朝向可扩展量子网络方案的道路上的关键能够实现技术。然而,许多最先进的综合量子光子学展示仍然需要光到外部光电探测器的耦合。片上硅单光子雪崩二极管(SPAD)提供了一种可行的解决方案,因为它们可以与光子元件无缝集成,并且在具有热电冷却的温度下,具有高效率和低暗计数。在本文中,我们报道了在硅片上的基于硅波导的硅片的设计和仿真,以获得可见波长的可见波长,聚焦在具有不同掺杂配置的两个设备系列上:P-N(+)和P-I-N(+)。我们通过使用2-D蒙特卡罗方法模拟雪崩过程,以及243 k和300k的暗计数率(DCR)计算光子检测效率(PDE)和时序抖动。对于我们的模拟参数,最佳引脚(+)镜头显示HEST设备性能,饱和PDE为52.4 +/- 0.6%,反向偏置电压为31.5 V,全宽半最大(FWHM)时序抖动10 ps,每秒<5计数的DCR为243 K.

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