论文标题

超导电路中非亚洲几何控制的非亚伯几何控制门的演示

Demonstration of a non-Abelian geometric controlled-Not gate in a superconducting circuit

论文作者

Xu, Kai, Ning, Wen, Huang, Xin-Jie, Han, Pei-Rong, Li, Hekang, Yang, Zhen-Biao, Zheng, Dongning, Fan, Heng, Zheng, Shi-Biao

论文摘要

由希尔伯特(Hilbert)空间中量子状态的非亚洲几何变换引起的纯主,为量子计算提供了一种有希望的方法。这些义务不可交通,因此可以用于实现一组通用的量子逻辑门,其中全局几何特征可能会带来一些噪声弹性的优势。在这里,我们报告了超导电路中非亚洲几何控制门的第一个片上实现,这是构建自动量子计算机的基础。有条件的动力学是在全面连接的体系结构中实现的,该体系结构涉及多个可控的超导量子0,可控制地耦合到谐振器;可以通过与谐振器共振并向其中一个施加两色调驱动器时,可以通过调整其频率来实现任何两个量子位之间的自动门。该门是朝着超导平台上可扩展量子计算的全几何实现实现的重要步骤。

Holonomies, arising from non-Abelian geometric transformations of quantum states in Hilbert space, offer a promising way for quantum computation. These holonomies are not commutable and thus can be used for the realization of a universal set of quantum logic gates, where the global geometric feature may result in some noise-resilient advantages. Here we report the first on-chip realization of a non-Abelian geometric controlled-Not gate in a superconducting circuit, which is a building block for constructing a holonomic quantum computer. The conditional dynamics is achieved in an all-to-all connected architecture involving multiple frequency-tunable superconducting qubits controllably coupled to a resonator; a holonomic gate between any two qubits can be implemented by tuning their frequencies on resonance with the resonator and applying a two-tone drive to one of them. This gate represents an important step towards the all-geometric realization of scalable quantum computation on a superconducting platform.

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