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Crosstalk analysis for single-qubit and two-qubit gates in spin qubit arrays

机译:SpinQubit阵列中单QUBBIT和双时差栅极的Crosstalk分析

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Scaling up spin qubit systems requires high-fidelity single-qubit and two-qubit gates. Gate fidelities exceeding 98% were already demonstrated in silicon-based single and double quantum dots, whereas for the realization of larger qubit arrays, crosstalk effects on neighboring qubits must be taken into account. We analyze qubit fidelities impacted by crosstalk when performing single-qubit and two-qubit operations on neighbor qubits with a simple Heisenberg model. Furthermore, we propose conditions for driving fields to robustly synchronize Rabi oscillations and avoid crosstalk effects. In our analysis, we also consider crosstalk with two neighbors and show that double synchronization leads to a restricted choice for the driving field strength, exchange interaction, and thus gate time. Considering realistic experimental conditions, we propose a set of parameter values to perform a nearly crosstalk-free CNOT gate and so open up the pathway to scalable quantum computing devices.
机译:缩放旋转qubit系统需要高保真单qubit和两个qubit门。 超过98%的栅保保资金已经在基于硅的单量子点中进行了演示,而对于实现较大的Qubit阵列,必须考虑对邻近Qubits的串扰影响。 在使用简单的Heisenberg模型中,我们在邻居Qubits上执行单个Qubit和双Qubit操作时,我们分析由串扰影响的量子位保真度。 此外,我们提出了驱动场的条件,以强大地同步Rabi振荡并避免串扰效应。 在我们的分析中,我们还考虑与两个邻居的串扰,并表明双重同步导致驱动场强度,交换交互以及栅极时间的限制选择。 考虑到现实的实验条件,我们提出了一系列参数值来执行几乎无串扰的CNOT门,因此将路径打开到可扩展的量子计算设备。

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