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The Microwave SQUID Multiplexer.

机译:微波SQUID多路复用器。

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摘要

This thesis describes a multiplexer of Superconducting Quantum Interference Devices (SQUIDs) with low-noise, ultra-low power dissipation, and great scalability. The multiplexer circuit measures the magnetic flux in a large number of unshunted rf SQUIDs by coupling each SQUID to a superconducting microwave resonator tuned to a unique resonance frequency and driving the resonators from a common feedline. A superposition of microwave tones measures each SQUID simultaneously using only two coaxial cables between the cryogenic device and room temperature. This multiplexer will enable the instrumentation of arrays with hundreds of thousands of low-temperature detectors for new applications in cosmology, materials analysis, and nuclear non-proliferation.;The driving application of the Microwave SQUID Multiplexer is the readout of large arrays of superconducting transition-edge sensors, by some figures of merit the most sensitive detectors of electromagnetic signals over a span of more than nine orders of magnitude in energy, from 40 GHz microwaves to 200 keV gamma rays. Modern transition-edge sensors have noise-equivalent power as low as 10-20 W / Hz1/2 and energy resolution as good as 2 eV at 6 keV. These per-pixel sensitivities approach theoretical limits set by the underlying signals, motivating a rapid increase in pixel count to access new science. Compelling applications, like the non-destructive assay of nuclear material for treaty verification or the search for primordial gravity waves from inflation use arrays of these detectors to increase collection area or tile a focal plane.;We developed three generations of SQUID multiplexers, optimizing the first for flux noise 0.17 muPhi0 / Hz1/2, the second for input current noise 19 pA / Hz1/2, and the last for practical multiplexing of large arrays of cosmic microwave background polarimeters based on transition-edge sensors. Using the last design we demonstrated multiplexed readout of prototype polarimeters with the performance required for the future development of a large-scale astronomical instrument.
机译:本文介绍了一种具有低噪声,超低功耗和可扩展性的超导量子干扰设备(SQUID)的多路复用器。多路复用器电路通过将每个SQUID耦合到调谐到唯一谐振频率的超导微波谐振器并从公共馈线驱动谐振器来测量大量未分流的射频SQUID中的磁通量。微波音的叠加仅使用低温设备和室温之间的两条同轴电缆即可同时测量每个SQUID。该多路复用器将使具有数十万个低温探测器的阵列仪器成为宇宙学,材料分析和核不扩散的新应用。微波SQUID多路复用器的驱动应用是读出大阵列超导转变从某些方面来看,边缘传感器是最灵敏的电磁信号检测器,其范围涵盖从40 GHz微波到200 keV伽马射线的超过9个数量级的能量。现代的过渡边缘传感器在6 keV时的等效噪声功率低至10-20 W / Hz1 / 2,能量分辨率高达2 eV。这些每个像素的灵敏度接近由基础信号设置的理论极限,从而促使像素数量快速增加,以获取新的科学。引人注目的应用,例如用于条约核查的核材料无损检测或从膨胀中寻找原始引力波,使用这些探测器的阵列来增加收集面积或平铺焦平面。我们开发了三代SQUID多路复用器,优化了第一个用于通量噪声0.17 muPhi0 / Hz1 / 2,第二个用于输入电流噪声19 pA / Hz1 / 2,最后一个用于基于过渡边缘传感器的大阵列宇宙微波背景偏振计的实际复用。使用最后的设计,我们展示了原型旋光仪的多重读数,以及未来大型天文仪器开发所需的性能。

著录项

  • 作者

    Mates, John Arthur Benson.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Physics Electricity and Magnetism.;Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 127 p.
  • 总页数 127
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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