论文标题

麦克斯韦 - 雪人丁格Qubits与传输线网络耦合的超导码头建模

Maxwell-Schrödinger Modeling of Superconducting Qubits Coupled to Transmission Line Networks

论文作者

Roth, Thomas E., Elkin, Samuel T.

论文摘要

在超导电路量子信息技术中,使用经典的微波脉冲来控制和测量量子状态。当前,这些微波脉冲的设计使用简单的理论或数值模型,这些模型无法解释量子态如何修改应用的微波脉冲的自洽相互作用。在这项工作中,我们介绍了半经典的Maxwell-Schrödinger方法的配方和有限的元素时间域离散化,用于描述这些自一致的动力学,用于超导Qubit电容与通用变速器线网络的超导Qubit。我们通过表征与理论分析适合的系统中的transmon和fluxonium Qubit相关的关键效应来验证所提出的方法。我们的数值结果还突出了包括自我一致互动至关重要的场景。通过经典处理微波,对于不需要微波的量子统计数据的许多情况,我们的方法比全量化方法要高得多。此外,当变速线系统修改时,我们的方法不需要任何重新进行。将来,我们的方法可用于迅速探索更广泛的设计空间,以寻找更有效的控制和测量方案,以实现超导量子台。

In superconducting circuit quantum information technologies, classical microwave pulses are applied to control and measure the qubit states. Currently, the design of these microwave pulses use simple theoretical or numerical models that do not account for the self-consistent interactions of how the qubit state modifies the applied microwave pulse. In this work, we present the formulation and finite element time domain discretization of a semiclassical Maxwell-Schrödinger method for describing these self-consistent dynamics for the case of a superconducting qubit capacitively coupled to a general transmission line network. We validate the proposed method by characterizing key effects related to common control and measurement approaches for transmon and fluxonium qubits in systems that are amenable to theoretical analysis. Our numerical results also highlight scenarios where including the self-consistent interactions are essential. By treating the microwaves classically, our method is substantially more efficient than fully-quantum methods for the many situations where the quantum statistics of the microwaves are not needed. Further, our approach does not require any reformulations when the transmission line system is modified. In the future, our method can be used to rapidly explore broader design spaces to search for more effective control and measurement protocols for superconducting qubits.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源