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Charting the circuit QED design landscape using optimal control theory

机译:使用最佳控制原理绘制电路QED设计图

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摘要

With recent improvements in coherence times, superconducting transmon qubits have become a promising platform for quantum computing. They can be flexibly engineered over a wide range of parameters, but also require us to identify an efficient operating regime. Using state-of-the-art quantum optimal control techniques, we exhaustively explore the landscape for creation and removal of entanglement over a wide range of design parameters. We identify an optimal operating region outside of the usually considered strongly dispersive regime, where multiple sources of entanglement interfere simultaneously, which we name the quasi-dispersive straddling qutrits regime. At a chosen point in this region, a universal gate set is realized by applying microwave fields for gate durations of 50 ns, with errors approaching the limit of intrinsic transmon coherence. Our systematic quantum optimal control approach is easily adapted to explore the parameter landscape of other quantum technology platforms.
机译:随着相干时间的最新改进,超导跨子量子位已成为量子计算的有前途的平台。它们可以在广泛的参数范围内灵活设计,但也需要我们确定有效的运行方案。使用最先进的量子最优控制技术,我们详尽地探索了在各种设计参数上创建和消除纠缠的环境。我们在通常被认为是强色散的区域之外确定了一个最佳的工作区域,在该区域中,多个纠缠源同时发生干扰,我们将其称为准色散的跨步态。在该区域的选定点上,通过施加50 ns的门持续时间的微波场来实现通用门集,其误差接近本征跨门相干的极限。我们系统的量子最优控制方法很容易适应,以探索其他量子技术平台的参数格局。

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