共 50 条
Efficient electronic cooling by niobium-based superconducting tunnel junctions
被引:0
|作者:
Hatinen, J.
[1
]
Ronzani, A.
[1
]
Loreto, R. P.
[1
]
Mykkanen, E.
[1
]
Kemppinen, A.
[1
]
Viisanen, K.
[1
]
Rantanen, T.
[1
]
Geisor, J.
[1
]
Lehtinen, J. S.
[1
]
Ribeiro, M.
[1
]
Kaikkonen, J. -P.
[1
]
Prakash, O.
[1
]
Vesterinen, V.
[1
]
Forbom, C.
[1
]
Mannila, E. T.
[1
]
Kervinen, M.
[1
]
Govenius, J.
[1
]
Prunnila, M.
[1
]
机构:
[1] VTT Tech Res Ctr Finland, Oulu, Finland
来源:
PHYSICAL REVIEW APPLIED
|
2024年
/
22卷
/
06期
基金:
芬兰科学院;
关键词:
REFRIGERATION;
TEMPERATURE;
D O I:
10.1103/PhysRevApplied.22.064048
中图分类号:
O59 [应用物理学];
学科分类号:
摘要:
Replacing the bulky cryoliquid-based cooling stages of cryoenabled instruments by chip-scale refrigeration is envisioned to disruptively reduce the system size similar to microprocessors did for computers. Electronic refrigerators based on superconducting tunnel junctions have been anticipated to provide a solution, but reaching the necessary above the 1-K operation temperature range has remained a goal out of reach for several decades. We show efficient electronic refrigeration by Al-AlOx-Nb superconducting tunnel junctions starting from bath temperatures above 2 K. The junctions can deliver electronic cooling power up to approximately mW/mm2, which enables us to demonstrate tunnel-current-driven electron temperature reduction from 2.4 K to below 1.6 K (34% relative cooling) against the phonon bath. Our work shows that the key material of integrated superconducting circuits-niobium-enables powerful cryogenic refrigerator technology. This result is a prerequisite for practical cryogenic chip-scale refrigerators and, at the same time, it introduces a new electrothermal tool for quantum heat-transport experiments.
引用
收藏
页数:7
相关论文