论文标题

超导量子的光学光子的量子转导

Quantum transduction of optical photons from a superconducting qubit

论文作者

Mirhosseini, Mohammad, Sipahigil, Alp, Kalaee, Mahmoud, Painter, Oskar

论文摘要

电信和光学信号的双向转换位于全球互联网的基础上。此类转换器在中继器站使用,以扩大长途光纤通信系统的范围,并在数据中心内部交换计算机之间的高速光信号。同样,单个光子的相干微波转换将使远程连接的超导量子处理器之间的量子状态交换,这是一个有希望的量子计算硬件平台。尽管有量子网络的前景,但在这样的转换过程中保持脆弱的量子状态仍然难以捉摸。在这里,我们证明了将超导式转移量子置矩置量子的微波频率激发到光光子中的转化。我们使用中介纳米力学谐振器实现了这一目标,该谐振器通过压电相互作用将量子的电激发转换为单个声子,然后通过辐射压力将声子转换为光子光子。我们通过通过光纤上的单光子检测来记录量子的量子性兔子振荡,从量子量的量子振荡量子振荡,从量子队中发出了光子之间的光子光子的产生。随着设备和外部测量设置的提议改进,此类量子传感器可能会导致能够实现新的混合量子网络的实用设备,并最终导致分布式量子计算机。

Bidirectional conversion of electrical and optical signals lies at the foundation of the global internet. Such converters are employed at repeater stations to extend the reach of long-haul fiber optic communication systems and within data centers to exchange high-speed optical signals between computers. Likewise, coherent microwave-to-optical conversion of single photons would enable the exchange of quantum states between remotely connected superconducting quantum processors, a promising quantum computing hardware platform. Despite the prospects of quantum networking, maintaining the fragile quantum state in such a conversion process with superconducting qubits has remained elusive. Here we demonstrate the conversion of a microwave-frequency excitation of a superconducting transmon qubit into an optical photon. We achieve this using an intermediary nanomechanical resonator which converts the electrical excitation of the qubit into a single phonon by means of a piezoelectric interaction, and subsequently converts the phonon to an optical photon via radiation pressure. We demonstrate optical photon generation from the qubit with a signal-to-noise greater than unity by recording quantum Rabi oscillations of the qubit through single-photon detection of the emitted light over an optical fiber. With proposed improvements in the device and external measurement set-up, such quantum transducers may lead to practical devices capable of realizing new hybrid quantum networks, and ultimately, distributed quantum computers.

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