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Nonreciprocal reconfigurable microwave optomechanical circuit

机译:不可逆可重构微波光机电路

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摘要

Nonreciprocal microwave devices are ubiquitous in radar and radio communication and indispensable in the readout chains of superconducting quantum circuits. Since they commonly rely on ferrite materials requiring large magnetic fields that make them bulky and lossy, there has been significant interest in magnetic-field-free on-chip alternatives, such as those recently implemented using the Josephson nonlinearity. Here, we realize reconfigurable nonreciprocal transmission between two microwave modes using purely optomechanical interactions in a superconducting electromechanical circuit. The scheme relies on the interference in two mechanical modes that mediate coupling between the microwave cavities and requires no magnetic field. We analyse the isolation, transmission and the noise properties of this nonreciprocal circuit. Finally, we show how quantum-limited circulators can be realized with the same principle. All-optomechanically mediated nonreciprocity demonstrated here can also be extended to directional amplifiers, and it forms the basis towards realizing topological states of light and sound.
机译:不可逆的微波设备在雷达和无线电通信中无处不在,在超导量子电路的读出链中必不可少。由于它们通常依赖于需要大磁场的铁氧体材料,这会使其体积庞大且有损耗,因此人们对无磁场的片上替代品非常感兴趣,例如最近使用约瑟夫森非线性技术实现的替代方案。在这里,我们利用超导机电电路中的纯粹光机械相互作用,实现了两个微波模式之间可重构的不可逆传输。该方案依赖于两种机械模式下的干扰,这些干扰可调节微波腔之间的耦合,并且不需要磁场。我们分析了这种不可逆电路的隔离,传输和噪声特性。最后,我们展示了如何使用相同的原理来实现量子受限循环器。这里展示的全光机介导的不可逆性也可以扩展到定向放大器,并且它是实现光和声的拓扑状态的基础。

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