Observation of nonvolatile magneto-thermal switching in superconductors

被引:8
作者
Arima, Hiroto [1 ]
Kasem, Md. Riad [1 ]
Sepehri-Amin, Hossein [2 ]
Ando, Fuyuki [2 ]
Uchida, Ken-ichi [2 ]
Kinoshita, Yuto [3 ]
Tokunaga, Masashi [3 ]
Mizuguchi, Yoshikazu [1 ]
机构
[1] Tokyo Metropolitan Univ, Dept Phys, 1-1,Minami Osawa, Hachioji 1920397, Japan
[2] Natl Inst Mat Sci, 1-2-1,Sengen, Tsukuba 3050047, Japan
[3] Univ Tokyo, Inst Solid State Phys, 5-1-5,Kashiwanoha, Kashiwa 2778581, Japan
关键词
THERMAL-CONDUCTIVITY;
D O I
10.1038/s43246-024-00465-9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Applying a magnetic field to a solid changes its thermal-transport properties. Although such magneto-thermal-transport phenomena are usually small effects, giant magneto-thermal resistance has recently been observed in spintronic materials and superconductors, opening up new possibilities in thermal management technologies. However, the thermal conductivity conventionally changes only when a magnetic field is applied due to the absence of nonvolatility, which limits potential applications of thermal switching devices. Here, we report the observation of nonvolatile thermal switching that changes the electron thermal conductivity when a magnetic field is applied and retains the value even when the field is turned off. This unconventional magneto-thermal switching arises in commercial Sn-Pb solders and is realized by phase-separated superconducting states and resultant nonuniform magnetic flux distributions. This result confirms the versatility of the observed phenomenon and aids the development of active solid-state thermal management devices. Giant magneto-thermal resistance has been recently observed in spintronic materials and superconductors, with exciting prospects in thermal management technologies. Here, nonvolatile thermal switching by magnetic field is demonstrated in commercial Sn-Pb solders, with electron thermal conductivity retaining its value even when the field is turned off.
引用
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页数:8
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共 29 条
[1]   Nobel Lecture: Type-II superconductors and the vortex lattice [J].
Abrikosov, AA .
REVIEWS OF MODERN PHYSICS, 2004, 76 (03) :975-979
[2]   THEORY OF SUPERCONDUCTIVITY [J].
BARDEEN, J ;
COOPER, LN ;
SCHRIEFFER, JR .
PHYSICAL REVIEW, 1957, 108 (05) :1175-1204
[3]   Electrochemically tunable thermal conductivity of lithium cobalt oxide [J].
Cho, Jiung ;
Losego, Mark D. ;
Zhang, Hui Gang ;
Kim, Honggyu ;
Zuo, Jianmin ;
Petrov, Ivan ;
Cahill, David G. ;
Braun, Paul V. .
NATURE COMMUNICATIONS, 2014, 5
[4]   CRITICAL THICKNESSES IN SUPERCONDUCTING THIN-FILMS [J].
DOLAN, GJ ;
SILCOX, J .
PHYSICAL REVIEW LETTERS, 1973, 30 (13) :603-606
[5]   EXPERIMENTAL PROOF OF MAGNETIC FLUX QUANTIZATION IN A SUPERCONDUCTING RING [J].
DOLL, R ;
NABAUER, M .
PHYSICAL REVIEW LETTERS, 1961, 7 (02) :51-&
[6]   THE WALL-THICKNESS DEPENDENCE OF MAGNETIC SHIELDING OR TRAPPING IN A LOW-FIELD SUPERCONDUCTOR, PB40SN60 [J].
FURUYA, S ;
TOMINAGA, A ;
NARAHARA, Y .
JOURNAL OF LOW TEMPERATURE PHYSICS, 1983, 53 (3-4) :477-485
[7]   Observation of single flux quantum vortices in the intermediate state of a type-I superconducting film [J].
Ge, Junyi ;
Gutierrez, Joffre ;
Cuppens, Jo ;
Moshchalkov, Victor V. .
PHYSICAL REVIEW B, 2013, 88 (17)
[8]   REAL-TIME OBSERVATION OF VORTEX LATTICES IN A SUPERCONDUCTOR BY ELECTRON-MICROSCOPY [J].
HARADA, K ;
MATSUDA, T ;
BONEVICH, J ;
IGARASHI, M ;
KONDO, S ;
POZZI, G ;
KAWABE, U ;
TONOMURA, A .
NATURE, 1992, 360 (6399) :51-53
[9]   STM SPECTROSCOPY OF VORTEX CORES AND THE FLUX LATTICE [J].
HESS, HF ;
ROBINSON, RB ;
WASZCZAK, JV .
PHYSICA B-CONDENSED MATTER, 1991, 169 (1-4) :422-431
[10]   Superconducting quantum computing: a review [J].
Huang, He-Liang ;
Wu, Dachao ;
Fan, Daojin ;
Zhu, Xiaobo .
SCIENCE CHINA-INFORMATION SCIENCES, 2020, 63 (08)