Modelling non-Markovian noise in driven superconducting qubits

IF 5.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Science and Technology Pub Date : 2024-04-25 DOI:10.1088/2058-9565/ad3d7e
Abhishek Agarwal, Lachlan P Lindoy, Deep Lall, François Jamet and Ivan Rungger
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Abstract

Non-Markovian noise can be a significant source of errors in superconducting qubits. We develop gate sequences utilising mirrored pseudoidentities that allow us to characterise and model the effects of non-Markovian noise on both idle and driven qubits. We compare three approaches to modelling the observed noise: (i) a Markovian noise model, (ii) a model including interactions with a two-level system (TLS), (iii) a model utilising the post Markovian master equation, which we show to be equivalent to the qubit-TLS model in certain regimes. When running our noise characterisation circuits on a superconducting qubit device we find that purely Markovian noise models cannot reproduce the experimental data. Our model based on a qubit-TLS interaction, on the other hand, is able to closely capture the observed experimental behaviour for both idle and driven qubits. We investigate the stability of the noise properties of the hardware over time, and find that the parameter governing the qubit-TLS interaction strength fluctuates significantly even over short time-scales of a few minutes. Finally, we evaluate the changes in the noise parameters when increasing the qubit drive pulse amplitude. We find that although the hardware noise parameters fluctuate significantly over different days, their drive pulse induced relative variation is rather well defined within computed uncertainties: both the phase error and the qubit-TLS interaction strength change significantly with the pulse strength, with the phase error changing quadratically with the amplitude of the applied pulse. Since our noise model can closely describe the behaviour of idle and driven qubits, it is ideally suited to be used in the development of quantum error mitigation and correction methods.
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驱动超导量子比特中的非马尔可夫噪声建模
非马尔可夫噪声是超导量子比特误差的一个重要来源。我们利用镜像伪同一性开发了门序列,使我们能够描述和模拟非马尔可夫噪声对空闲和驱动量子比特的影响。我们比较了三种对观测到的噪声进行建模的方法:(i) 马尔可夫噪声模型,(ii) 包括与两级系统(TLS)相互作用的模型,(iii) 利用后马尔可夫主方程的模型。在超导量子比特器件上运行噪声特性电路时,我们发现纯马尔可夫噪声模型无法再现实验数据。另一方面,我们基于量子比特-TLS 相互作用的模型能够密切捕捉空闲量子比特和驱动量子比特的实验行为。我们研究了硬件噪声特性随时间变化的稳定性,发现即使在几分钟的短时间内,控制量子比特-TLS相互作用强度的参数也会发生显著波动。最后,我们评估了增加量子比特驱动脉冲幅度时噪声参数的变化。我们发现,虽然硬件噪声参数在不同的日子里波动很大,但它们在驱动脉冲诱导下的相对变化在计算的不确定性范围内相当明确:相位误差和量子位-TLS相互作用强度都随脉冲强度的变化而显著变化,其中相位误差随应用脉冲的振幅呈二次变化。由于我们的噪声模型能够密切描述空闲和驱动量子比特的行为,因此非常适合用于开发量子误差缓解和纠正方法。
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来源期刊
Quantum Science and Technology
Quantum Science and Technology Materials Science-Materials Science (miscellaneous)
CiteScore
11.20
自引率
3.00%
发文量
133
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. Quantum Science and Technology is a new multidisciplinary, electronic-only journal, devoted to publishing research of the highest quality and impact covering theoretical and experimental advances in the fundamental science and application of all quantum-enabled technologies.
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