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Digital-analog quantum simulation of generalized Dicke models with superconducting circuits

机译:具有超导电路的广义Dicke模型的数模量子模拟

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摘要

We propose a digital-analog quantum simulation of generalized Dicke models with superconducting circuits, including Fermi- Bose condensates, biased and pulsed Dicke models, for all regimes of light-matter coupling. We encode these classes of problems in a set of superconducting qubits coupled with a bosonic mode implemented by a transmission line resonator. Via digital-analog techniques, an efficient quantum simulation can be performed in state-of-the-art circuit quantum electrodynamics platforms, by suitable decomposition into analog qubit-bosonic blocks and collective single-qubit pulses through digital steps. Moreover, just a single global analog block would be needed during the whole protocol in most of the cases, superimposed with fast periodic pulses to rotate and detune the qubits. Therefore, a large number of digital steps may be attained with this approach, providing a reduced digital error. Additionally, the number of gates per digital step does not grow with the number of qubits, rendering the simulation efficient. This strategy paves the way for the scalable digital-analog quantum simulation of many-body dynamics involving bosonic modes and spin degrees of freedom with superconducting circuits.
机译:我们提出了具有超导电路的广义Dicke模型的数模量子模拟,包括费米-玻色凝聚,偏压和脉冲Dicke模型,适用于所有的光-质耦合机制。我们将这些类别的问题编码为一组超导量子位,再加上由传输线谐振器实现的波速模式。通过数模技术,可以通过数字步阶将适当的分解成模拟量子位玻色子块和集体单量子位脉冲,在最先进的电路量子电动力学平台中执行有效的量子模拟。而且,在大多数情况下,在整个协议中只需要一个全局模拟块,就可以叠加快速周期性脉冲来旋转和失谐量子比特。因此,采用这种方法可以实现大量的数字步长,从而减少了数字误差。此外,每个数字步长的门数不会随qubit数的增加而增加,从而提高了仿真效率。该策略为涉及超导电路的涉及玻色子模式和自旋自由度的多体动力学的可扩展数字模拟量子仿真铺平了道路。

著录项

  • 作者

    Lamata Manuel Lucas;

  • 作者单位
  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 eng
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