论文标题

部分可观测时空混沌系统的无模型预测

SLAC Microresonator RF (SMuRF) Electronics: A tone-tracking readout system for superconducting microwave resonator arrays

论文作者

Yu, Cyndia, Ahmed, Zeeshan, Frisch, Josef C., Henderson, Shawn W., Silva-Feaver, Max, Arnold, Kam, Brown, David, Connors, Jake, Cukierman, Ari J., D'Ewart, J. Mitch, Dober, Bradley J., Dusatko, John E., Haller, Gunther, Herbst, Ryan, Hilton, Gene C., Hubmayr, Johannes, Irwin, Kent D., Kuo, Chao-Lin, Mates, John A. B., Ruckman, Larry, Ullom, Joel, Vale, Leila, Van Winkle, Daniel D., Vasquez, Jesus, Young, Edward

论文摘要

我们描述了SLAC微孔子RF(SMURF)电子的最新一代,这是一种用于微波频率谐振器的低温检测器和多路复用器系统的温暖数字控制和读数系统,例如微波鱿鱼多路复用器($μ$ MUX)或微波动力学能力检测器(Mkids)。粒子物理和天文学的超敏感测量越来越依赖大量的低温传感器,这反过来又需要高度多重的读数和随附的室温电子设备。微波频率谐振器是低温多路复用的流行工具,有可能在一个读出线上多重多重探测器通道。 SMURF系统提供了在4-8 GHz带宽上读取多达3328个通道的能力。值得注意的是,SMURF系统在实施闭环音调传输算法方面是独一无二的,该算法可以最大程度地减少传输到冷放大器的RF功率,从而实质上放松的系统线性需求和来自调整产品的有效噪声。在这里,我们介绍了蓝精电子的硬件,固件和软件系统的描述,将实现的性能与科学驱动的设计要求进行了比较。我们特别关注大型通道计数,低带宽应用程序的情况,但是对于高带宽应用程序,该系统很容易重新配置。此处描述的系统已成功部署在世界各地的实验室设置和现场站点中,并用于即将到来的大规模观测站。

We describe the newest generation of the SLAC Microresonator RF (SMuRF) electronics, a warm digital control and readout system for microwave-frequency resonator-based cryogenic detector and multiplexer systems such as microwave SQUID multiplexers ($μ$mux) or microwave kinetic inductance detectors (MKIDs). Ultra-sensitive measurements in particle physics and astronomy increasingly rely on large arrays of cryogenic sensors, which in turn necessitate highly multiplexed readout and accompanying room-temperature electronics. Microwave-frequency resonators are a popular tool for cryogenic multiplexing, with the potential to multiplex thousands of detector channels on one readout line. The SMuRF system provides the capability for reading out up to 3328 channels across a 4-8 GHz bandwidth. Notably, the SMuRF system is unique in its implementation of a closed-loop tone-tracking algorithm that minimizes RF power transmitted to the cold amplifier, substantially relaxing system linearity requirements and effective noise from intermodulation products. Here we present a description of the hardware, firmware, and software systems of the SMuRF electronics, comparing achieved performance with science-driven design requirements. We focus in particular on the case of large channel count, low bandwidth applications, but the system has been easily reconfigured for high bandwidth applications. The system described here has been successfully deployed in lab settings and field sites around the world and is baselined for use on upcoming large-scale observatories.

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