Park Jaemin, Jang Hyeongyu, Sohn Hanseo, Yun Jonginn, Song Younguk, Kang Byungwoo, Stehouwer Lucas E A, Esposti Davide Degli, Scappucci Giordano, Kim Dohun
Department of Physics and Astronomy, and Institute of Applied Physics, Seoul National University, Seoul, Korea.
QuTech and Kavli Institute of Nanoscience, Delft University of Technology, GA, Delft, The Netherlands.
Nat Commun. 2025 Jan 2;16(1):78. doi: 10.1038/s41467-024-55338-z.
Addressing and mitigating decoherence sources plays an essential role in the development of a scalable quantum computing system, which requires low gate errors to be consistently maintained throughout the circuit execution. While nuclear spin-free materials, such as isotopically purified silicon, exhibit intrinsically promising coherence properties for electron spin qubits, the omnipresent charge noise, when converted to magnetic noise under a strong magnetic field gradient, often hinders stable qubit operation within a time frame comparable to the data acquisition time. Here, we demonstrate both open- and closed-loop suppression techniques for the transduced noise in silicon spin qubits, resulting in a more than two-fold (ten-fold) improvement of the inhomogeneous coherence time (Rabi oscillation quality) that leads to a single-qubit gate fidelity of over 99.6% even in the presence of a strong decoherence field gradient. Utilizing gate set tomography, we show that adaptive qubit control also reduces the non-Markovian noise in the system, which validates the stability of the gate fidelity. The technique can be used to learn multiple Hamiltonian parameters and is useful for the intermittent calibration of the circuit parameters with affordable experimental overhead, providing a useful subroutine during the repeated execution of general quantum circuits.
解决和减轻退相干源在可扩展量子计算系统的发展中起着至关重要的作用,该系统要求在整个电路执行过程中始终保持低门错误率。虽然诸如同位素纯化硅等无核自旋材料对电子自旋量子比特具有内在的良好相干特性,但无处不在的电荷噪声在强磁场梯度下转换为磁噪声时,往往会在与数据采集时间相当的时间范围内阻碍量子比特的稳定运行。在此,我们展示了用于硅自旋量子比特中转换噪声的开环和闭环抑制技术,导致非均匀相干时间(拉比振荡质量)提高了两倍以上(十倍),即使在存在强退相干场梯度的情况下,单比特门保真度仍超过99.6%。利用门集层析成像,我们表明自适应量子比特控制还降低了系统中的非马尔可夫噪声,这验证了门保真度的稳定性。该技术可用于学习多个哈密顿参数,并且对于以可承受的实验开销间歇性校准电路参数很有用,在通用量子电路的重复执行过程中提供了一个有用的子例程。