论文标题
杂交机电系统中的大型通量介导的耦合与Transmon Qubit
Large flux-mediated coupling in hybrid electromechanical system with a transmon qubit
论文作者
论文摘要
对大规模振荡器的量子状态的控制对于多种技术应用非常重要,并测试了量子力学的基本限制。在振荡器中增加内部自由度可能是这种控制的宝贵资源。最近,基于电荷介导的耦合的超导量子A的混合机电系统非常成功。在这里,我们实现了一个混合设备,该设备由超导式旋转值和使用磁通量耦合的机械谐振器组成。耦合源于整个隧道连接中超导相的量子干扰。我们通过与读出腔的transmon Qubit谐振剂来证明真空机电耦合速率高达4 kHz。因此,通过驱动均值低于一个光子以下的杂交模式来检测机械谐振器的热运动。通过调节距离腔的量子,机电耦合可以增强到40 kHz。在此限制下,机械谐振器上的小相干驱动会导致量子频谱的分裂,并且我们观察到由Landau-Zener-Stückelberg效应引起的干扰特征。随着量子线相干性的改善,该系统提供了一个新颖的平台来实现丰富的相互作用,并有可能完全控制量子运动状态。
Control over the quantum states of a massive oscillator is important for several technological applications and to test the fundamental limits of quantum mechanics. Addition of an internal degree of freedom to the oscillator could be a valuable resource for such control. Recently, hybrid electromechanical systems using superconducting qubits, based on electric-charge mediated coupling, have been quite successful. Here, we realize a hybrid device, consisting of a superconducting transmon qubit and a mechanical resonator coupled using the magnetic-flux. The coupling stems from the quantum-interference of the superconducting phase across the tunnel junctions. We demonstrate a vacuum electromechanical coupling rate up to 4 kHz by making the transmon qubit resonant with the readout cavity. Consequently, thermal-motion of the mechanical resonator is detected by driving the hybridized-mode with mean-occupancy well below one photon. By tuning qubit away from the cavity, electromechanical coupling can be enhanced to 40 kHz. In this limit, a small coherent drive on the mechanical resonator results in the splitting of qubit spectrum, and we observe interference signature arising from the Landau-Zener-Stückelberg effect. With improvements in qubit coherence, this system offers a novel platform to realize rich interactions and could potentially provide full control over the quantum motional states.