NTT Basic Research Laboratories, NTT Corporation, 3-1 Morinosato-Wakamiya, Atsugi, Kanagawa 243-0198, Japan.
Nature. 2011 Oct 12;478(7368):221-4. doi: 10.1038/nature10462.
During the past decade, research into superconducting quantum bits (qubits) based on Josephson junctions has made rapid progress. Many foundational experiments have been performed, and superconducting qubits are now considered one of the most promising systems for quantum information processing. However, the experimentally reported coherence times are likely to be insufficient for future large-scale quantum computation. A natural solution to this problem is a dedicated engineered quantum memory based on atomic and molecular systems. The question of whether coherent quantum coupling is possible between such natural systems and a single macroscopic artificial atom has attracted considerable attention since the first demonstration of macroscopic quantum coherence in Josephson junction circuits. Here we report evidence of coherent strong coupling between a single macroscopic superconducting artificial atom (a flux qubit) and an ensemble of electron spins in the form of nitrogen-vacancy colour centres in diamond. Furthermore, we have observed coherent exchange of a single quantum of energy between a flux qubit and a macroscopic ensemble consisting of about 3 × 10(7) such colour centres. This provides a foundation for future quantum memories and hybrid devices coupling microwave and optical systems.
在过去的十年中,基于约瑟夫森结的超导量子比特(qubit)的研究取得了飞速的进展。许多基础实验已经完成,超导量子比特现在被认为是量子信息处理最有前途的系统之一。然而,实验报告的相干时间可能不足以满足未来大规模量子计算的需求。解决这个问题的一个自然方法是基于原子和分子系统的专用工程量子存储器。自从在约瑟夫森结电路中首次演示宏观量子相干以来,人们一直关注这样的自然系统与单个宏观人工原子之间是否可能存在相干量子耦合。在这里,我们报告了单个宏观超导人工原子(磁通量子比特)与金刚石中氮空位色心形式的电子自旋集体之间存在相干强耦合的证据。此外,我们还观察到了一个磁通量子比特和一个由大约 3×10(7)个这样的色心组成的宏观集体之间的单个量子能量的相干交换。这为未来的量子存储器和耦合微波和光学系统的混合器件奠定了基础。