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使用光子链路控制和读出超导量子位。

Control and readout of a superconducting qubit using a photonic link.

机构信息

National Institute of Standards and Technology, Boulder, CO, USA.

Department of Physics, University of Colorado, Boulder, CO, USA.

出版信息

Nature. 2021 Mar;591(7851):575-579. doi: 10.1038/s41586-021-03268-x. Epub 2021 Mar 24.

Abstract

Delivering on the revolutionary promise of a universal quantum computer will require processors with millions of quantum bits (qubits). In superconducting quantum processors, each qubit is individually addressed with microwave signal lines that connect room-temperature electronics to the cryogenic environment of the quantum circuit. The complexity and heat load associated with the multiple coaxial lines per qubit limits the maximum possible size of a processor to a few thousand qubits. Here we introduce a photonic link using an optical fibre to guide modulated laser light from room temperature to a cryogenic photodetector, capable of delivering shot-noise-limited microwave signals directly at millikelvin temperatures. By demonstrating high-fidelity control and readout of a superconducting qubit, we show that this photonic link can meet the stringent requirements of superconducting quantum information processing. Leveraging the low thermal conductivity and large intrinsic bandwidth of optical fibre enables the efficient and massively multiplexed delivery of coherent microwave control pulses, providing a path towards a million-qubit universal quantum computer.

摘要

要实现通用量子计算机的革命性承诺,需要具有数百万量子位(qubit)的处理器。在超导量子处理器中,每个量子位都通过微波信号线单独寻址,这些信号线将室温电子设备连接到量子电路的低温环境。每个量子位的多个同轴线路的复杂性和热负荷限制了处理器的最大可能尺寸,使其达到几千个量子位。在这里,我们引入了一种使用光纤的光子链路,将调制后的激光从室温引导到低温光电探测器,从而能够在毫开尔文温度下直接提供达到散粒噪声限制的微波信号。通过演示超导量子位的高保真控制和读出,我们表明这种光子链路可以满足超导量子信息处理的严格要求。利用光纤的低热导率和大固有带宽,可以高效且大规模地多路复用相干微波控制脉冲,为实现百万量子位通用量子计算机铺平了道路。

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