Choi Sang-Jun, Trauzettel Björn
Institute for Theoretical Physics and Astrophysics, University of Würzburg, D-97074 Würzburg, Germany.
Würzburg-Dresden Cluster of Excellence ct.qmat, Germany.
Phys Rev Lett. 2022 Mar 25;128(12):126801. doi: 10.1103/PhysRevLett.128.126801.
Deep theoretical understanding of the electrical response of Josephson junctions is indispensable regarding both recent discoveries of new kinds of superconductivity and technological advances such as superconducting quantum computers. Here, we study the microscopic theory of the dc current-biased I-V characteristics of Josephson tunnel junctions. We derive an analytical formula of the I-V characteristics of generic junctions. We identify subharmonics of the I-V characteristics and their underlying mechanism as the feedback effect of intrinsic ac currents generated by voltage pulses in the past. We apply our theory to analytically solve the Werthamer equation and describe various dc current-biased I-V characteristics as a function of softening of the superconducting gap. Strikingly, we identify voltage staircases of the I-V characteristics in a genuine Josephson junction without ac current bias or qubit dynamics. Our general analytical formalism opens new avenues for a microscopic understanding of I-V characteristics of Josephson junctions that have been limited to phenomenological models so far.
对于新型超导性的最新发现以及诸如超导量子计算机等技术进步而言,对约瑟夫森结的电响应有深入的理论理解是必不可少的。在此,我们研究约瑟夫森隧道结直流电流偏置下的I-V特性的微观理论。我们推导了一般结的I-V特性的解析公式。我们识别出I-V特性的次谐波及其潜在机制,即过去电压脉冲产生的固有交流电流的反馈效应。我们应用我们的理论来解析求解韦瑟默方程,并将各种直流电流偏置下的I-V特性描述为超导能隙软化的函数。令人惊讶的是,我们在没有交流电流偏置或量子比特动力学的真正约瑟夫森结中识别出了I-V特性的电压阶梯。我们的一般解析形式为微观理解约瑟夫森结的I-V特性开辟了新途径,而迄今为止,对该特性的理解一直局限于唯象模型。