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Magnetically induced transparency of a quantum metamaterial composed of twin flux qubits

机译:双通量量子位组成的量子超材料的磁感应透明性

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摘要

Quantum theory is expected to govern the electromagnetic properties of a quantum metamaterial, an artificially fabricated medium composed of many quantum objects acting as artificial atoms. Propagation of electromagnetic waves through such a medium is accompanied by excitations of intrinsic quantum transitions within individual meta-atoms and modes corresponding to the interactions between them. Here we demonstrate an experiment in which an array of double-loop type superconducting flux qubits is embedded into a microwave transmission line. We observe that in a broad frequency range the transmission coefficient through the metamaterial periodically depends on externally applied magnetic field. Field-controlled switching of the ground state of the meta-atoms induces a large suppression of the transmission. Moreover, the excitation of meta-atoms in the array leads to a large resonant enhancement of the transmission. We anticipate possible applications of the observed frequency-tunable transparency in superconducting quantum networks.
机译:预计量子理论将控制量子超材料的电磁特性,该材料是由许多充当人工原子的量子对象组成的人工制造的介质。电磁波通过这种介质的传播伴随着单个亚原子内的固有量子跃迁和与它们之间相互作用相对应的模式的激发。在这里,我们演示了将双环型超导通量量子位阵列嵌入微波传输线的实验。我们观察到,在很宽的频率范围内,通过超材料的传输系数周期性地取决于外部施加的磁场。场控制原子的基态的转换引起了对传输的极大抑制。此外,阵列中的亚原子的激发导致透射的大共振增强。我们预计观察到的频率可调透明性在超导量子网络中的可能应用。

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