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Fine-Tuning and Optimization of Superconducting Quantum Magnetic Sensors by Thermal Annealing

机译:通过热退火进行超导量子磁传感器的微调和优化

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摘要

In the present article, we present the experimental results concerning the fine-tuning and optimization of superconducting quantum interference device (SQUID) parameters by thermal annealing. This treatment allows for the modification of the parameters in order to meet a specific application or to adjust the device parameters to prevent the increase of magnetic field noise and work instability conditions due to a different critical current with respect to the design value. In particular, we report the sensor critical current, the voltage−flux (V−Φ) characteristics and the spectral density of the magnetic field of SQUID magnetometers for different annealing temperatures. The measurements demonstrate that it is possible to achieve a fine control of the most important device parameters. In particular, we show that thermal annealing allows for the reduction of SQUID noise by more than a factor of 5 and makes the device working operations very stable. These results are very useful in view of quantum technology applications related to superconducting quantum computing where the correct functioning of the quantum bit depends on the fine control of the superconducting quantum device parameters and selectable annealing is possible by using a suitable laser as a thermal source.
机译:在本文中,我们通过热退火介绍了关于超导量子干扰装置(Squid)参数的微调和优化的实验结果。该处理允许修改参数以满足特定应用或调整器件参数以防止由于相对于设计值的不同临界电流而增加磁场噪声和工作不稳定条件。特别地,我们报告了鱿鱼磁力计磁场的电压 - 通量(V-φ)特性和频谱密度的传感器临界电流,用于不同的退火温度。测量结果表明,可以实现对最重要的设备参数的精细控制。特别地,我们表明热退火允许减少鱿鱼噪声超过5系数,使装置工作操作非常稳定。这些结果对于与超导量子计算有关的量子技术应用非常有用,其中量子比特的正确功能取决于超导量子器件参数的精细控制,并且通过使用合适的激光作为热源可以选择性退火。

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