论文标题

系统高保真门操作的简单框架

Simple framework for systematic high-fidelity gate operations

论文作者

Rimbach-Russ, Maximilian, Philips, Stephan G. J., Xue, Xiao, Vandersypen, Lieven M. K.

论文摘要

半导体旋转Qubits显示了单Qubit大门,其忠诚度高达$ 99.9 \%$ $ $ $ $ $ $ $ $。然而,层析成像表征揭示了在更大空间中不可忽略的串扰错误。此外,长期以来,两Q量的门的性能受到电荷噪声的限制,这些噪声通过交换相互作用将其伴随到Qubits。在这里,我们表明,连贯的误差源,例如控制信号的有限带宽,可生物性误差,微波串扰和非线性传递函数可以同样限制保真度。我们报告了一个简单的脉冲优化理论框架,该框架将错误的动力学与光谱浓度问题相关联,并允许在较大的门操作集上重新使用现有的信号成型方法。我们将此框架应用于自旋Qubits的常见门操作,并表明在存在此类相干误差源的情况下,简单的脉冲塑形技术可以显着改善这些门操作的性能。本文中提出的方法用于证明$ f> 99.5 \%$ in Ref。〜[Xue等,Nature 601,343]。我们还发现,可以使用相同的脉冲形状优化单个和两倍的门。我们使用分析推导和数值模拟来获得超过$ 99.9 \%$的预测门保真度,持续时间小于$ 4/(ΔF)$,其中$ΔF$是Qubit频率的差异。

Semiconductor spin qubits demonstrated single-qubit gates with fidelities up to $99.9\%$ benchmarked in the single-qubit subspace. However, tomographic characterizations reveals non-negligible crosstalk errors in a larger space. Additionally, it was long thought that the two-qubit gate performance is limited by charge noise which couples to the qubits via the exchange interaction. Here, we show that coherent error sources such as a limited bandwidth of the control signals, diabaticity errors, microwave crosstalk, and non-linear transfer functions can equally limit the fidelity. We report a simple theoretical framework for pulse optimization that relates erroneous dynamics to spectral concentration problems and allows for the reuse of existing signal shaping methods on a larger set of gate operations. We apply this framework to common gate operations for spin qubits and show that simple pulse shaping techniques can significantly improve the performance of these gate operations in the presence of such coherent error sources. The methods presented in the paper were used to demonstrate two-qubit gate fidelities with $F>99.5\%$ in Ref.~[Xue et al, Nature 601, 343]. We also find that single and two-qubit gates can be optimized using the same pulse shape. We use analytic derivations and numerical simulations to arrive at predicted gate fidelities greater than $99.9\%$ with duration less than $4/(Δf)$ where $Δf$ is the difference in qubit frequencies.

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