Hua Ming, Tao Ming-Jie, Deng Fu-Guo
Department of Physics, Applied Optics Beijing Area Major Laboratory, Beijing Normal University, Beijing 100875, China.
Sci Rep. 2016 Feb 24;6:22037. doi: 10.1038/srep22037.
We propose a quantum processor for the scalable quantum computation on microwave photons in distant one-dimensional superconducting resonators. It is composed of a common resonator R acting as a quantum bus and some distant resonators rj coupled to the bus in different positions assisted by superconducting quantum interferometer devices (SQUID), different from previous processors. R is coupled to one transmon qutrit, and the coupling strengths between rj and R can be fully tuned by the external flux through the SQUID. To show the processor can be used to achieve universal quantum computation effectively, we present a scheme to complete the high-fidelity quantum state transfer between two distant microwave-photon resonators and another one for the high-fidelity controlled-phase gate on them. By using the technique for catching and releasing the microwave photons from resonators, our processor may play an important role in quantum communication as well.
我们提出了一种用于在远距离一维超导谐振器中的微波光子上进行可扩展量子计算的量子处理器。它由一个用作量子总线的公共谐振器R和一些通过超导量子干涉仪装置(SQUID)在不同位置耦合到总线的远距离谐振器rj组成,这与以前的处理器不同。R耦合到一个三能级超导量子比特,并且rj和R之间的耦合强度可以通过穿过SQUID的外部磁通进行完全调谐。为了表明该处理器可有效地用于实现通用量子计算,我们提出了一种在两个远距离微波光子谐振器之间完成高保真量子态转移的方案,以及另一种在它们上实现高保真受控相位门的方案。通过使用从谐振器捕获和释放微波光子的技术,我们的处理器在量子通信中也可能发挥重要作用。