利用一维超导量子比特链模拟基塔耶夫链以及环境对拓扑状态的影响

Yang Zhang, Yun-Qiu Ge, Yu-xi Liu
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引用次数: 0

摘要

基塔耶夫链是研究拓扑量子态和量子计算的重要物理模型之一。我们在此提出一种通过超导量子比特电路模拟一维基塔耶夫链的方法。在我们的方法中,所有耦合参数都可以独立控制,并构建了一个非难规相。我们还研究了环境对基塔耶夫链拓扑态的影响。除了每个量子比特周围的独立环境外,我们还考虑了相邻量子比特共享的共同环境。这种环境可以在量子比特之间产生有效的非赫米耗散耦合。通过分析和数值计算,我们证明公共环境会显著影响量子位链的拓扑特性。此外,我们观察到基塔耶夫链边缘的耗散耦合比其他地方的耦合对拓扑状态的影响更大。我们的工作为利用超导量子比特电路探索拓扑相变和环境对拓扑物理的影响提供了一种新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of Kitaev chain using one-dimensional chain of superconducting qubits and environmental effects on topological states
Kitaev chain is one of the important physical models for studying topological quantum states and quantum computing. We here propose an approach to simulate the one-dimensional Kitaev chain via a circuit of superconducting qubits. In our approach, all coupling parameters can be controlled independently, and a nontrivial gauge phase is constructed. We also study the environmental effects on the topological states of the Kitaev chain. In addition to the independent environment surrounding each qubit, we consider the common environment shared by neighboring qubits. Such an environment can generate effective non-Hermitian dissipative coupling between qubits. Through analysis and numerical calculation, we demonstrate that the common environment can significantly affect the topological properties of the qubit chain. Moreover, we observe that dissipative couplings at the edges of the Kitaev chain affect the topological states more strongly than those located elsewhere. Our work may provide a new way to explore topological phase transitions and environmental effects on topological physics using superconducting qubit circuits.
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