论文标题

具有高数据吞吐量的32通道时标记和巧合探测器单元

A 32 Channel Time-Tagging and Coincidence Detector Unit with High Data Throughput

论文作者

Hidvegi, Attila

论文摘要

在许多科学研究领域使用时间标记单元和巧合探测器。所需的定时分辨率和输入通道的数量有所不同,但是量子光学领域的一些新兴实验需要多达32个输入通道,其正时分辨率约为10 ps,并且数据处理能力高。这项工作是关于定制设计的基于FPGA的定制时间标签和巧合探测器单元,具有32个输入通道,8 ps的定时解决方案,高数据处理能力以及具有高带宽通信端口(例如USB-3和PCIE X4),以进行读数。通过非常高的定时分辨率和许多通道,对于正确表征每个输入通道中数字转换器的性能至关重要,以验证其准确性。讨论了重要的误差源,并评估了一种常见的性能测量方法,并经常被忽略的缺陷。该项目中实施的性能测量是同时表征每个通道的特征,除PCB上的额外的晶体振荡器和FPGA中的模式发生器外,不需要其他外部仪器。高级测量足够准确,可以检测到不同类型的抖动,从不同的来源,测量由电源引起的噪声,测量线性并详细表征每个输入通道。详细介绍和评估了测量结果。该板具有高性能,大量的输入渠道和详细的表征目前是独特的和最前沿的。

Time-tagging units and coincidence detectors are used in many scientific research fields. The required timing resolution and number of input channels are varying, but some emerging experiments in the field of quantum optics require up to 32 input channels with a timing resolution of approximately 10 ps and high data processing capability. This work is about a custom designed FPGA based time-tagging and coincidence detector unit, with 32 input channels, 8 ps of timing resolution, high data processing capability and with high bandwidth communication ports, such as USB-3 and PCIe x4, for readout. With very high timing resolution and many channels it is crucial to properly characterize the performance of the time-to-digital converters in every input channel, to validate their accuracy. Important sources of error are discussed and a common method of performance measurement is evaluated, together with its often overlooked flaws. The performance measurement implemented in this project characterizes every channel simultaneously, with no additional external instrument required except for an extra crystal oscillator on the PCB and a built in pattern generator in the FPGA. The advanced measurement is accurate enough to detect different type of jitters, from varying sources, measure noise caused by power supplies, measure linearity and characterize every input channels in detail. The measurement results are presented and evaluated in detail. This board with its high performance, large number of input channels and detailed characterization is currently unique and cutting edge.

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