论文标题
约瑟夫森连接处的相位可调热电学
Phase-tunable thermoelectricity in a Josephson junction
论文作者
论文摘要
超导隧道连接构成超导量子电路的单位,并大量用于量子传感和量子计算。在以前的工作中,我们预测了电子孔对称系统中的非线性热电效应,即在两个不同的超导体之间的热偏置隧道连接处,在其中抑制了约瑟夫森效应。在本文中,我们通过调整约瑟夫森耦合的大小改变了直接电流超导量子干扰装置(DC-squid)的通量,研究了相位贡献对热电效应的影响。对于被抑制的约瑟夫森耦合,该系统会产生有限的平均热电信号,该信号合并到标准的AC Josephson现象学引起的振荡。在大约瑟夫森耦合下,热电学诱导了振荡行为,其电流/电压的平均值为零,并具有振幅和与约瑟夫森耦合强度相关的频率,并最终通过DC-Squid磁通量调节。总之,我们证明能够控制电子孔对称性自发断裂的动力学。此外,我们计算了通量如何应用于DC平式的,并且电路的集团元素确定了整个结构上热电信号的频率,并且我们设想了频率调制应用。
Superconducting tunnel junctions constitute the units of superconducting quantum circuits and are massively used both for quantum sensing and quantum computation. In previous works, we predicted the existence of a nonlinear thermoelectric effect in a electron-hole symmetric system, namely, a thermally biased tunnel junction between two different superconductors, where the Josephson effect is suppressed. In this paper we investigate the impact of the phase-coherent contributions on the thermoelectric effect, by tuning the size of the Josephson coupling changing the flux of a direct-current Superconducting Quantum Interference Device (dc-SQUID). For a suppressed Josephson coupling, the system generates a finite average thermoelectric signal, combined to an oscillation due to the standard ac Josephson phenomenology. At large Josephson couplings, the thermoelectricity induces an oscillatory behaviour with zero average value of the current/voltage with an amplitude and a frequency associated to the Josephson coupling strength, and ultimately tuned by the dc-SQUID magnetic flux. In conclusion, we demonstrate to be able to control the dynamics of the spontaneous breaking of the electron-hole symmetry. Furthermore, we compute how the flux applied to the dc-SQUID and the lumped elements of the circuit determine the frequency of the thermoelectric signal across the structure, and we envision a frequency modulation application.