论文标题
基于空腔的水库工程,用于浮力工程超导电路
Cavity-based reservoir engineering for Floquet-engineered superconducting circuits
论文作者
论文摘要
考虑到超导电路的示例,我们展示了如何将Floquet Engineering与储层工程结合在一起,以控制目标状态。 Floquet Engineering通常在高频制度中通过时间周期强迫来控制量子系统,以便该系统受到时间独立的floquet hamiltonian的有效控制,具有新颖的有趣特性。另一方面,可以通过将人工原子(或Qubits)的系统偶联到泵送的漏水腔中来实现储层工程,以使诱导的耗散将系统引导到所需的目标状态。显而易见的是,这两种方法可以组合在一起,因为达到分散性制度,在这种情况下,系统和空腔仅通过驾驶引起的共振转变而损害了系统和空腔的交换激发。但是,在扩展的浮标空间中工作,处理系统腔耦合以及在同一基础上驱动引起的激发过程,我们确定了靶向浮雕状态的储层工程,并且可以通过有效的时间独立的主方程来准确地描述。我们成功地基准了我们在不同晶格几何形状的浮雕工程磁场的相互作用玻色子系统中制备基态的方法。
Considering the example of superconducting circuits, we show how Floquet engineering can be combined with reservoir engineering for the controlled preparation of target states. Floquet engineering refers to the control of a quantum system by means of time-periodic forcing, typically in the high-frequency regime, so that the system is governed effectively by a time-independent Floquet Hamiltonian with novel interesting properties. Reservoir engineering, on the other hand, can be achieved in superconducting circuits by coupling a system of artificial atoms (or qubits) dispersively to pumped leaky cavities, so that the induced dissipation guides the system into a desired target state. It is not obvious that the two approaches can be combined, since reaching the dispersive regime, in which system and cavities exchange excitations only virtually, can be spoiled by driving-induced resonant transitions. However, working in the extended Floquet space and treating both system-cavity coupling as well as driving-induced excitation processes on the same footing perturbatively, we identify regimes, where reservoir engineering of targeted Floquet states is possible and accurately described by an effective time-independent master equation. We successfully benchmark our approach for the preparation of the ground state in a system of interacting bosons subjected to Floquet engineered magnetic fields in different lattice geometries.