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首页> 外文期刊>Journal of Applied Physics >Readout-power heating and hysteretic switching between thermal quasiparticle states in kinetic inductance detectors
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Readout-power heating and hysteretic switching between thermal quasiparticle states in kinetic inductance detectors

机译:动电感检测器中的读出功率加热和热准粒子状态之间的磁滞切换

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摘要

A model is presented for readout-power heating in kinetic inductance detectors. It is shown that the power dissipated by the readout signal can cause the temperature of the quasiparticle system in the superconducting resonator to switch between well-defined states. At low readout powers, only a single solution to the heat balance equation exists, and the resonance curve merely distorts as the readout power is increased. At high readout powers, three states exist, two of which are stable, and the resonance curve shows hysteretic switching. The power threshold for switching depends on the geometry and material used but is typically around -70 dBm for Aluminum resonators. A comprehensive set of simulations is reported, and a detailed account of the switching process is given. Experimental results are also shown, which are in strong qualitative agreement with the simulations. The general features of the model are independent of the precise cooling function, and are even applicable for resonators on suspended, thermally isolated, dielectric membranes, where an increase in quasiparticle lifetime is expected. We discuss various extensions to the technique, including the possibility of recovering the cooling function from large-signal measurements of the resonance curve.
机译:提出了一种用于动感检测器中读出功率加热的模型。结果表明,读出信号所耗散的功率会导致超导谐振器中准粒子系统的温度在明确定义的状态之间切换。在低读出功率下,仅存在热平衡方程的单个解,并且共振曲线仅随着读出功率的增加而失真。在高读出功率下,存在三种状态,其中两种是稳定的,并且共振曲线显示出滞后切换。开关的功率阈值取决于所用的几何形状和材料,但对于铝谐振器,通常为-70 dBm左右。报告了一组全面的仿真,并给出了开关过程的详细说明。还显示了实验结果,这些结果与模拟具有很强的定性一致性。该模型的一般特征与精确的冷却功能无关,甚至适用于悬浮的,热隔离的介电膜上的谐振器,在这种谐振器上,准粒子的寿命有望增加。我们讨论了对该技术的各种扩展,包括从共振曲线的大信号测量中恢复冷却功能的可能性。

著录项

  • 来源
    《Journal of Applied Physics》 |2010年第11期|p.114504.1-114504.9|共9页
  • 作者单位

    Kavli Institute of NanoScience, Faculty of Applied Sciences, Delft University of Technology, Lorentzweg 1,2628 CJ Delft, The Netherlands and SRON National Institute for Space Research, Sorbonnelaan 2,3584 CA Utrecht, The Netherlands;

    rnCavendish Laboratory, Cambridge University, JJ Thomson Avenue, Cambridge CB3 0HE, United Kingdom;

    rnCavendish Laboratory, Cambridge University, JJ Thomson Avenue, Cambridge CB3 0HE, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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