论文标题

快速且大带宽超导变量耦合器

A fast and large bandwidth superconducting variable coupler

论文作者

Chang, Hung-Shen, Satzinger, Kevin J., Zhong, Youpeng, Bienfait, Audrey, Chou, Ming-Han, Conner, Christopher R., Dumur, Étienne, Grebel, Joel, Peairs, Gregory A., Povey, Rhys G., Cleland, Andrew N.

论文摘要

可变微波频率耦合器是经典通信系统中非常有用的组件,并且可能在量子通信应用中发挥重要作用。传统的基于半导体的微波耦合器已与超导量子电路一起使用,例如通过常见的读出链实现多个设备的原位测量。但是,半导体元素是有损的,并且在切换时会消散能量,这使得它们不适合需要快速,重复开关的低温应用。可以通过快速开关设计,可以设计用于Josephson连接的超导耦合器,可轻松与超导量子电路集成。这些使微波光子的芯片上量子量路由可以提供吸引人的半导体开关的替代方案。在这里,我们介绍并表征了一个基于芯片的宽带微波变量耦合器,可在4-8 GHz上调节,超过1.5 GHz瞬时带宽,基于具有两个平行的Josephson连接的超导量子干扰装置(Squid)。耦合器不含耗散,具有超过40 dB的大开关比率,并且可以在约10 ns中更改耦合。此处介绍的简单设计可以很容易地与超导量子电路集成在一起,并且可以轻松地概括以实现四个或更多的端口设备。

Variable microwave-frequency couplers are highly useful components in classical communication systems, and likely will play an important role in quantum communication applications. Conventional semiconductor-based microwave couplers have been used with superconducting quantum circuits, enabling for example the in situ measurements of multiple devices via a common readout chain. However, the semiconducting elements are lossy, and furthermore dissipate energy when switched, making them unsuitable for cryogenic applications requiring rapid, repeated switching. Superconducting Josephson junction-based couplers can be designed for dissipation-free operation with fast switching and are easily integrated with superconducting quantum circuits. These enable on-chip, quantum-coherent routing of microwave photons, providing an appealing alternative to semiconductor switches. Here, we present and characterize a chip-based broadband microwave variable coupler, tunable over 4-8 GHz with over 1.5 GHz instantaneous bandwidth, based on the superconducting quantum interference device (SQUID) with two parallel Josephson junctions. The coupler is dissipation-free, features large on-off ratios in excess of 40 dB, and the coupling can be changed in about 10 ns. The simple design presented here can be readily integrated with superconducting qubit circuits, and can be easily generalized to realize a four- or more port device.

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