Kumar K S, Vepsäläinen A, Danilin S, Paraoanu G S
Low Temperature Laboratory, Department of Applied Physics, Aalto University School of Science, PO Box 15100, Aalto FI-00076, Finland.
Nat Commun. 2016 Feb 23;7:10628. doi: 10.1038/ncomms10628.
The adiabatic manipulation of quantum states is a powerful technique that opened up new directions in quantum engineering--enabling tests of fundamental concepts such as geometrical phases and topological transitions, and holding the promise of alternative models of quantum computation. Here we benchmark the stimulated Raman adiabatic passage for circuit quantum electrodynamics by employing the first three levels of a transmon qubit. In this ladder configuration, we demonstrate a population transfer efficiency >80% between the ground state and the second excited state using two adiabatic Gaussian-shaped control microwave pulses. By doing quantum tomography at successive moments during the Raman pulses, we investigate the transfer of the population in time domain. Furthermore, we show that this protocol can be reversed by applying a third adiabatic pulse, we study a hybrid nondiabatic-adiabatic sequence, and we present experimental results for a quasi-degenerate intermediate level.
量子态的绝热操控是一项强大的技术,它为量子工程开辟了新方向——能够对诸如几何相位和拓扑相变等基本概念进行测试,并有望成为量子计算的替代模型。在此,我们通过利用跨导量子比特的前三个能级,对电路量子电动力学中的受激拉曼绝热通道进行基准测试。在这种阶梯配置中,我们使用两个绝热高斯形状的控制微波脉冲,展示了基态与第二激发态之间大于80%的布居转移效率。通过在拉曼脉冲期间的连续时刻进行量子层析成像,我们在时域中研究了布居的转移。此外,我们表明通过施加第三个绝热脉冲可以使该协议反向,我们研究了一种混合非绝热 - 绝热序列,并给出了准简并中间能级的实验结果。