论文标题

在超导电路中具有可调耦合的两个Qutrits门的实验实现

Experimental Realization of Two Qutrits Gate with Tunable Coupling in Superconducting Circuits

论文作者

Luo, Kai, Huang, Wenhui, Tao, Ziyu, Zhang, Libo, Zhou, Yuxuan, Chu, Ji, Liu, Wuxin, Wang, Biying, Cui, Jiangyu, Liu, Song, Yan, Fei, Yung, Man-Hong, Chen, Yuanzhen, Yan, Tongxing, Yu, Dapeng

论文摘要

基于栅极的量子计算已经使用基于Qubit的量子电路进行了广泛的研究。在许多情况下,此类Qubits实际上是由多级系统制成的,但只有两个状态用于计算目的。尽管这种策略具有与常见的二进制逻辑相符的优势,但从某种意义上说,它浪费了这些内在的多维系统的大型希尔伯特空间中的现成资源。因此,已经讨论了量子计算以外的量子计算(例如,使用QUTRITS或QUDITS)在某些情况下已经讨论并认为比其量子量对应物更有效。但是,基于QUTRIT的量子计算的基本要素之一是两Qutrit量子门,仍然是一个主要挑战。在这项工作中,我们提出并展示了超导量子电路中高效且可扩展的两Qutrit量子门。我们的方案使用可调耦合器控制两个Qutrit之间的交叉耦合,通过将涂在耦合器的单QUTRIT操作结合到耦合器上的简单脉冲,实现了一个两Qutrit条件相栅极,具有忠诚度为89.3%。我们进一步使用这样的两Qutrit门来准备两个Qutrits的EPR状态,其保真度为95.5%。我们的方案利用了可调的Qutrit-Qutrit耦合,并具有较大的ON:OFF比率。因此,它在Qutrits之间提供了高效率和低频道,因此对扩展非常友好。我们的工作构成了迈向基于QUTRIT的量子计算的重要一步。

Gate-based quantum computation has been extensively investigated using quantum circuits based on qubits. In many cases, such qubits are actually made out of multilevel systems but with only two states being used for computational purpose. While such a strategy has the advantage of being in line with the common binary logic, it in some sense wastes the ready-for-use resources in the large Hilbert space of these intrinsic multi-dimensional systems. Quantum computation beyond qubits (e.g., using qutrits or qudits) has thus been discussed and argued to be more efficient than its qubit counterpart in certain scenarios. However, one of the essential elements for qutrit-based quantum computation, two-qutrit quantum gate, remains a major challenge. In this work, we propose and demonstrate a highly efficient and scalable two-qutrit quantum gate in superconducting quantum circuits. Using a tunable coupler to control the cross-Kerr coupling between two qutrits, our scheme realizes a two-qutrit conditional phase gate with fidelity 89.3% by combining simple pulses applied to the coupler with single-qutrit operations. We further use such a two-qutrit gate to prepare an EPR state of two qutrits with a fidelity of 95.5%. Our scheme takes advantage of a tunable qutrit-qutrit coupling with a large on:off ratio. It therefore offers both high efficiency and low cross talk between qutrits, thus being friendly for scaling up. Our work constitutes an important step towards scalable qutrit-based quantum computation.

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