物理
量子计算机
腔量子电动力学
量子成像
量子光学
量子技术
电路量子电动力学
超导量子计算
量子位元
开放量子系统
量子
量子力学
量子纠错
量子信息
量子网络
作者
Alexandre Blais,S. M. Girvin,William Oliver
出处
期刊:Nature Physics
[Springer Nature]
日期:2020-03-01
卷期号:16 (3): 247-256
被引量:294
标识
DOI:10.1038/s41567-020-0806-z
摘要
Since the first observation of coherent quantum behaviour in a superconducting qubit, now more than 20 years ago, there have been substantial developments in the field of superconducting quantum circuits. One such advance is the introduction of the concepts of cavity quantum electrodynamics (QED) to superconducting circuits, to yield what is now known as circuit QED. This approach realizes in a single architecture the essential requirements for quantum computation, and has already been used to run simple quantum algorithms and to operate tens of superconducting qubits simultaneously. For these reasons, circuit QED is one of the leading architectures for quantum computation. In parallel to these advances towards quantum information processing, circuit QED offers new opportunities for the exploration of the rich physics of quantum optics in novel parameter regimes in which strongly nonlinear effects are readily visible at the level of individual microwave photons. We review circuit QED in the context of quantum information processing and quantum optics, and discuss some of the challenges on the road towards scalable quantum computation. The introduction of concepts from cavity quantum electrodynamics to superconducting circuits yielded circuit quantum electrodynamics, a platform eminently suitable to quantum information processing and for the exploration of novel regimes in quantum optics.
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