论文标题

高Q超导体的功率和温度依赖性模型

Power and temperature dependent model for High Q superconductors

论文作者

Alexander, Ashish, Weddle, Christopher G., Richardson, Christopher J. K.

论文摘要

测量共面波导超导谐振器的内部质量因素是确定超导装置中少量损失的一种既定方法。传统上,谐振器损失仅归因于使用质量因子的功率依赖模型的两级系统(TLS)缺陷。但是,过量的非平衡准颗粒还可以限制在电路量子电动力学中使用的平面超导谐振器的质量因子。在Millikelvin温度下,可以通过单个高能量或多个亚间隙光子来破坏库珀对来产生准颗粒。在这里,提出了两个温度,功率和温度依赖性模型,以评估同时隔离TLS和准粒子损失的谐振损失。该模型将常规的TLS功率和温度依赖性与有效温度的非平衡准粒子描述了超导损耗的描述。准颗粒描述基于使用外部准粒子生成源,重组和捕获的速率方程计算的准粒子数密度。使用可能与浴缸不同的热分布将数量密度转化为有效温度。用硅的单晶铝和氮化钛​​薄膜制造的高质量因子谐振器的实验测量方法用呈现的模型解释。这种方法能够鉴定准粒子和TLS损失,从而确定锡谐振器在低功率和低温下具有可比的TLS和准粒子损失,而低温AL谐振器行为则由非平衡的准粒子损失主导。

Measuring the internal quality factor of coplanar waveguide superconducting resonators is an established method of determining small losses in superconducting devices. Traditionally, the resonator losses are only attributed to two-level system (TLS) defects using a power dependent model for the quality factor. However, excess non-equilibrium quasiparticles can also limit the quality factor of the planar superconducting resonators used in circuit quantum electrodynamics. At millikelvin temperatures, quasiparticles can be generated by breaking Cooper pairs via a single high-energy or multiple sub-gap photons. Here a two-temperature, power and temperature dependent model is proposed to evaluate resonator losses for isolating TLS and quasiparticle loss simultaneously. The model combines the conventional TLS power and temperature dependence with an effective temperature non-equilibrium quasiparticle description of the superconducting loss. The quasiparticle description is based on the quasiparticle number density calculated using rate equations for an external quasiparticle generation source, recombination, and trapping. The number density is translated to an effective temperature using a thermal distribution that may be different from the bath. Experimental measurements of high-quality factor resonators fabricated from single crystal aluminum and titanium nitride thin films on silicon are interpreted with the presented model. This approach enables identification of quasiparticle and TLS loss, resulting in the determination that the TiN resonator has comparable TLS and quasiparticle loss at low power and low-temperature, while the low-temperature Al resonator behavior is dominated by non-equilibrium quasiparticle loss.

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