射频 SQUID 超材料中元原子间的强电容耦合效应

Jingnan Cai, Robin Cantor, Johanne Hizanidis, Nikos Lazarides and Steven M Anlage
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引用次数: 0

摘要

我们首次考虑了重叠超材料几何结构中的射频超导量子干涉器件(rf SQUID)在自谐振频率及附近的射频通量驱动下产生的强电容和电感耦合效应。我们建立并求解了每个 SQUID 中约瑟夫森结上的规整不变相的运动方程。我们的模型通过 SQUID 环路布线之间的电容重叠,解释了高频位移电流。我们首先对两个重叠的 SQUID 进行建模,研究其在线性和非线性高频驱动极限下的响应。通过探索一连串越来越复杂的阵列,我们最终将形式主义扩展到重叠超材料阵列,并在此基础上从三类共振的角度理解了由此产生的多种( )共振模式。我们通过分析理论、数值建模以及在 10-30 GHz 范围内对电容耦合和电感耦合射频 SQUID 超材料的实验,证明了电容耦合会产生新的射频 SQUID 超材料自谐振响应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of strong capacitive coupling between meta-atoms in rf SQUID metamaterials
We consider, for the first time, the effects of strong capacitive and inductive coupling between radio frequency superconducting quantum interference devices (rf SQUIDs) in an overlapping metamaterial geometry when driven by rf flux at and near their self-resonant frequencies. The equations of motion for the gauge-invariant phases on the Josephson junctions in each SQUID are set up and solved. Our model accounts for the high-frequency displacement currents through capacitive overlap between the wiring of SQUID loops. We begin by modeling two overlapping SQUIDs and studying the response in both the linear and nonlinear high-frequency driving limits. By exploring a sequence of more and more complicated arrays, the formalism is eventually extended to the overlapping metamaterial array, where we develop an understanding of the many ( ) resulting resonant modes in terms of three classes of resonances. The capacitive coupling gives rise to qualitatively new self-resonant responses of rf SQUID metamaterials, and is demonstrated through analytical theory, numerical modeling, and experiment in the 10–30 GHz range on capacitively and inductively coupled rf SQUID metamaterials.
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