论文标题
一个快速可调的3D跨性别架构,用于超导基于Qubit的混合设备
A fast tunable 3D-transmon architecture for superconducting qubit-based hybrid devices
论文作者
论文摘要
超导码头利用约瑟夫森连接的强烈非线性。控制约瑟夫森非线性,无论是通过当前的偏差还是通过磁通量,可以是一种宝贵的资源,可以在由超导码头组成的混合系统中带来可调性。为了启用这样的控件,在这里,我们在3D空腔体系结构中为频率可调的transmon固定量符合快速线线。我们研究了磁通量依赖性的动态范围,来自未限制状态的松弛以及通量线的带宽。使用时间域测量值,我们用$ \ \ \ \ \ \ \ \ 2.1 \ times10^4 $光子从较高能量水平的较高能量水平探测了Transmon的放松。对于实验中使用的设备,我们发现相对于连贯性为4.8〜$μ$ s的回收时间的复苏时间。我们使用快速频线线来调整量子频率,并演示腔和量子模式之间单个激发的交换。通过测量转移的人口与理论预测的偏差,我们估计通量线的带宽约为$ \ $〜$ 〜100〜MHz,受设计中的寄生效应的限制。这些结果表明,在此处采用的方法是在3D腔中实现快速线线,这可能对基于超导量子的混合设备有所帮助。
Superconducting qubits utilize the strong non-linearity of the Josephson junctions. Control over the Josephson nonlinearity, either by a current bias or by the magnetic flux, can be a valuable resource that brings tunability in the hybrid system consisting of superconducting qubits. To enable such a control, here we incorporate a fast-flux line for a frequency tunable transmon qubit in 3D cavity architecture. We investigate the flux-dependent dynamic range, relaxation from unconfined states, and the bandwidth of the flux-line. Using time-domain measurements, we probe transmon's relaxation from higher energy levels after populating the cavity with $\approx 2.1\times10^4$ photons. For the device used in the experiment, we find a resurgence time corresponding to the recovery of coherence to be 4.8~$μ$s. We use a fast-flux line to tune the qubit frequency and demonstrate the swap of a single excitation between cavity and qubit mode. By measuring the deviation in the transferred population from the theoretical prediction, we estimate the bandwidth of the flux line to be $\approx$~100~MHz, limited by the parasitic effect in the design. These results suggest that the approach taken here to implement a fast-flux line in a 3D cavity could be helpful for the hybrid devices based on the superconducting qubit.