Highly efficient phase-tunable photonic thermal diode

G. Marchegiani, A. Braggio, F. Giazotto
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引用次数: 8

Abstract

We investigate the photon-mediated thermal transport between a superconducting electrode and a normal metal. When the quasiparticle contribution can be neglected, the photon-mediated channel becomes an efficient heat transport relaxation process for the superconductor at low temperatures, being larger than the intrinsic contribution due to the electron-phonon interaction. Furthermore, the superconductor-normal metal system acts as a nearly-perfect thermal diode, with a rectification factor up to $10^8$ for a realistic aluminum superconducting island. The rectification factor can be also tuned in a phase-controlled fashion through a non-galvanic coupling, realized by changing the magnetic flux piercing a superconducting quantum interference device (SQUID), which modifies the coupling impedance between the superconductor and the normal metal. The scheme can be exploited for passive cooling in superconducting quantum circuits by transferring heat toward normal metallic pads where it dissipates more efficiently or for more general thermal management purposes.
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高效相位可调光子热二极管
我们研究了超导电极和普通金属之间的光子介导的热输运。当准粒子的贡献可以忽略不计时,光子介导的通道在低温下成为超导体的有效热输运弛豫过程,大于电子-声子相互作用的本禀贡献。此外,超导体-正常金属系统作为一个近乎完美的热二极管,整流系数高达$10^8$对于一个现实的铝超导岛。通过改变穿透超导量子干涉器件(SQUID)的磁通量,改变超导体与正常金属之间的耦合阻抗,可以通过非电偶耦合以相位控制的方式调节整流因子。该方案可用于超导量子电路的被动冷却,通过将热量传递到更有效地消散的普通金属衬垫或用于更一般的热管理目的。
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