论文标题
模拟量子处理器上的噪声:量子和谐振两级系统浴之间的相互作用
Simulating noise on a quantum processor: interactions between a qubit and resonant two-level system bath
论文作者
论文摘要
物质缺陷从根本上限制了超导Qubit的相干时间,制造完全无缺陷的设备是不可能的。因此,了解实际量子处理器设计中缺陷与量子位之间的相互作用至关重要。我们构建了一个模型,该模型结合了标准隧道模型,量子位中的电场分布以及开放量子系统动力学,并从当前对两级系统(TLS)理论的理解中获取。具体而言,我们从分布在值表面的一百万个TLSS开始,然后选择最强烈耦合到量子的200个系统。然后,我们执行一个完整的lindbladian模拟,该模拟明确地包括量子和TLS浴之间的相干耦合,以建模谐振TLS缺陷和量子的时间依赖性密度矩阵。我们发现200个最强烈的TLSS可以准确地描述量子能量放松时间。这项工作证实,位于电场强的地区的共振TLSS也会显着影响量子放松时间,即使它们远离约瑟夫森交界处。同样,位于约瑟夫森交界处的强耦合共振TLS如果距离约瑟夫森交界处远距离远远,则不能保证减少量子放松时间。除了TLSS和量子位之间的耦合强度外,该模型还预测,设备的几何形状和TLS松弛时间在量子动力学中起着重要作用。我们的工作可以为未来的量子处理器设计提供指导,并有改善的量子相干时间。
Material defects fundamentally limit the coherence times of superconducting qubits, and manufacturing completely defect-free devices is not yet possible. Therefore, understanding the interactions between defects and a qubit in a real quantum processor design is essential. We build a model that incorporates the standard tunneling model, the electric field distributions in the qubit, and open quantum system dynamics, and draws from the current understanding of two-level system (TLS) theory. Specifically, we start with one million TLSs distributed on the surface of a qubit and pick the 200 systems that are most strongly coupled to the qubit. We then perform a full Lindbladian simulation that explicitly includes the coherent coupling between the qubit and the TLS bath to model the time dependent density matrix of resonant TLS defects and the qubit. We find that the 200 most strongly coupled TLSs can accurately describe the qubit energy relaxation time. This work confirms that resonant TLSs located in areas where the electric field is strong can significantly affect the qubit relaxation time, even if they are located far from the Josephson junction. Similarly, a strongly-coupled resonant TLS located in the Josephson junction does not guarantee a reduced qubit relaxation time if a more strongly coupled TLS is far from the Josephson junction. In addition to the coupling strengths between TLSs and the qubit, the model predicts that the geometry of the device and the TLS relaxation time play a significant role in qubit dynamics. Our work can provide guidance for future quantum processor designs with improved qubit coherence times.