约瑟夫逊电感在高度电阻的环境中的博洛米特检测
Diego Subero1, Olivier Maillet2,3, Dmitry S Golubev2
1PICO Group, QTF Centre of Excellence, Department of Applied Physics, Aalto University School of Science, P.O. Box 13500, 00076, Aalto, Finland. diego.suberorengel@aalto.fi.
Nature communications
|December 1, 2023
概括
一个对量子电路至关重要的约瑟夫森交点,令人惊的是,尽管库伦阻塞,但仍显示出一个幸存的超电流. 这表明它在高频率的感应行为,挑战以前的理论.
科学领域:
- 量子电路中的量子电路.
- 凝聚物质物理学 凝聚物质物理学
- 量子电子学 量子电子学
背景情况:
- 约瑟夫森连接是量子电路中的关键组件.
- 施密德的1983年理论预测了超过阻力量子 (RQ) 的变形连接的绝缘行为.
- 最近的微波测量使人们对这一预测产生了怀疑.
研究的目的:
- 为了研究与热环境相结合的约瑟夫森交叉点的行为.
- 为了调和关于转移的约瑟夫森连接的相互矛盾的实验观测.
- 探索在标准电荷传输测量中不明显的量子现象.
主要方法:
- 插入一个小的约瑟夫森结口到一个约翰逊-尼奎斯特设置.
- 在热波动造成的微弱电流噪声下驱动交叉点.
- 使用热探测器,以最小程度地扰乱交点的平衡.
- 进行直流电荷传输和高频热传输测量.
主要成果:
- 电流测量显示消失的约瑟夫森临界电流和库伦堡封锁,与理论保持一致.
- 令人惊的是,高频热传输测量表明,约瑟夫森连接作为电感器.
- 超级电流被明确地表明,尽管观察到DC库伦堡封锁,但仍然存在.
结论:
- 在电磁环境中约瑟夫森连接的行为是复杂的,并偏离了简单的绝缘预测.
- 热传输测量为量子现象提供了独特的见解,补充了电荷传输数据.
- 在特定条件下,超级电流可以与Josephson交叉点中的库伦阻塞共存,突出显示它们在高频率的感应特性.
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