分辨率为 10.9 纳米的多波长光谱光子探测系统,能够以 420Gs/s 的速度执行数据流

Masanobu Yamamoto, John Jaiber Gonzalez Murillo, Keegan Hernandez, Valery Patsekin, J. P. Robinson
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摘要

单光子探测(SPD)是未来量子细胞仪和量子生物学的基本技术。我们一直在开发之前在 DCS2022 上报告过的 SPD 技术,但最近实现了检测和记录光电子(PE)脉冲宽度⪅500ps,饱和计数 1Gcps,动态范围(DR)接近 7LOG。目前的挑战包括开发一种可在紫外线到近红外区域工作的光谱光子探测系统。我们已经开发出一种从 360nm 到 820nm 的六十进制动态范围光谱仪,它有一个 42 通道光纤阵列 (42CH),将每个光谱窗口分配到一个单独的像素耦合硅光电倍增管 (SiPM),每个通道的带宽为 10.9nm。利用多 GHz 电子设备和热电冷却技术,通过 FPGA 以 10Gs/s 和 100ps 的时间分辨率采集 42CH 的检测到的 PE 流,并产生 420Gs/s 的巨大数据流。我们发现,在干氮中使用金线连接的传统封装会对系统产生干扰问题,如振荡、相邻信道之间的串扰以及 Wi-Fi 和蜂窝射频信号等外部辐射的干扰。为了解决电气干扰并提高信号质量,传感器芯片被安装在一个八层的板上芯片(COB)上。改善传感器环境是我们系统的另一个重点。我们设计了一个目标温度为 -30°C 的两级热电装置,在传感器封装中安装了一个湿度获取器,以减少热电子和 SiPM 的暗计数。这种设计是一种创新的封装方法,有助于控制传感器内部的环境。早期的光子光谱法需要相当长的时间才能使用单色仪扫描整个光谱范围。我们新开发的 42CH 多波长光谱仪可在微秒至微秒内捕获光谱指纹,并可能以国际单位制读出。正在开发的系统将为快速发展的量子领域的各种应用做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiwavelength spectral photon detection system with 10.9nm resolution capable of perform data stream at 420Gs/s
Single Photon Detection (SPD) is the essential technology for the future of quantum cytometry and quantum biology. We have been developing SPD technology previously reported at DCS2022 but recently achieved detection and recording of photoelectron (PE) pulse width ⪅500ps with 1Gcps saturation count with near 7LOG Dynamic Range (DR). The current challenge involves developing a spectral photon detection system that works in the range from ultraviolet to near infrared region. We have developed a six-decade dynamic range spectrometer from 360nm to 820nm, with a 42 channels fiber array (42CH) that distributes each spectral window onto an individual pixel-coupled silicon photomultiplier (SiPM), each channel has a 10.9nm bandwidth. The detected PE streams of the 42CH are captured with an FPGA at 10Gs/s with 100ps time resolution using multi-GHz electronics and thermoelectric cooling, and produce a huge data stream of 420Gs/s. We have identified interference problems on the system which arise from using conventional packaging with gold wire connection in dry nitrogen such as oscillation, crosstalk between adjacent channels and interference from external radiation such as Wi-Fi and cellular RF signals. To resolve electrical interference and improve signal quality, the sensor chips were mounted on an eight-layer Chip-On-Board (COB). Improving the sensor environment was the other focus for our system. We have designed a two stagesthermoelectric device targeted at -30°C with a moisture getter in the sensor package to reduce the thermal electron and the dark count of the SiPM. This design is an innovative approach in the packaging method that helps to control the environment inside the sensor. Earlier photon spectroscopy required a considerable time to scan a full spectral range using a monochromator. Our newly developed 42CH multiwavelength spectrometer allows the capture of a spectral fingerprint in microseconds to microseconds with potential readout in SI units. The system under development will contribute various applications in the fast-developing quantum field.
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