Zhou Yu, Zhang Zhenxing, Yin Zelong, Huai Sainan, Gu Xiu, Xu Xiong, Allcock Jonathan, Liu Fuming, Xi Guanglei, Yu Qiaonian, Zhang Hualiang, Zhang Mengyu, Li Hekang, Song Xiaohui, Wang Zhan, Zheng Dongning, An Shuoming, Zheng Yarui, Zhang Shengyu
Tencent Quantum Laboratory, Tencent, Shenzhen, Guangdong, 518057, China.
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, China.
Nat Commun. 2021 Oct 11;12(1):5924. doi: 10.1038/s41467-021-26205-y.
Qubit initialization is a critical task in quantum computation and communication. Extensive efforts have been made to achieve this with high speed, efficiency and scalability. However, previous approaches have either been measurement-based and required fast feedback, suffered from crosstalk or required sophisticated calibration. Here, we report a fast and high-fidelity reset scheme, avoiding the issues above without any additional chip architecture. By modulating the flux through a transmon qubit, we realize a swap between the qubit and its readout resonator that suppresses the excited state population to 0.08% ± 0.08% within 34 ns (284 ns if photon depletion of the resonator is required). Furthermore, our approach (i) can achieve effective second excited state depletion, (ii) has negligible effects on neighboring qubits, and (iii) offers a way to entangle the qubit with an itinerant single photon, useful in quantum communication applications.
量子比特初始化是量子计算和通信中的一项关键任务。人们已经付出了巨大努力来实现高速、高效且可扩展的量子比特初始化。然而,先前的方法要么基于测量且需要快速反馈,存在串扰问题,要么需要复杂的校准。在此,我们报告一种快速且高保真的重置方案,无需任何额外的芯片架构即可避免上述问题。通过调制流经一个跨导量子比特的磁通,我们实现了量子比特与其读出谐振器之间的交换,在34纳秒内(如果需要谐振器的光子耗尽则为284纳秒)将激发态布居数抑制到0.08%±0.08%。此外,我们的方法(i)能够实现有效的第二激发态耗尽,(ii)对相邻量子比特的影响可忽略不计,并且(iii)提供了一种使量子比特与一个巡游单光子纠缠的方法,这在量子通信应用中很有用。