Kang Yi-Hao, Shi Zhi-Cheng, Song Jie, Xia Yan
Department of Physics, Harbin Institute of Technology, Harbin 150001, People's Republic of China.
Fujian Key Laboratory of Quantum Information and Quantum Optics (Fuzhou University), Fuzhou 350116, People's Republic of China.
Philos Trans A Math Phys Eng Sci. 2022 Dec 26;380(2239):20210279. doi: 10.1098/rsta.2021.0279. Epub 2022 Nov 7.
In this paper, we propose a protocol to realize non-adiabatic holonomic quantum computation (NHQC) of cavity modes via invariant-based reverse engineering. Coupling cavity modes with an auxiliary atom trapped in a cavity, we derive effective Hamiltonians with the help of laser pulses. Based on the derived Hamiltonians, invariant-based reverse engineering is used to find proper evolution paths for NHQC. Moreover, the systematic-error-sensitivity nullified optimal control method is considered in the parameter selections, making the protocol insensitive to the influence of systematic errors of pulses. We also estimate the imperfections induced by random noise and decoherence. Numerical results show that the protocol holds robustness against these imperfections. Therefore, the protocol may provide useful perspectives to quantum computation with optical qubits in cavity quantum electrodynamics systems. This article is part of the theme issue 'Shortcuts to adiabaticity: theoretical, experimental and interdisciplinary perspectives'.
在本文中,我们提出了一种通过基于不变量的逆向工程来实现腔模非绝热量子计算(NHQC)的协议。通过将腔模与捕获在腔内的辅助原子耦合,我们借助激光脉冲推导出有效哈密顿量。基于推导得到的哈密顿量,利用基于不变量的逆向工程来为非绝热量子计算找到合适的演化路径。此外,在参数选择中考虑了系统误差敏感性归零的最优控制方法,使得该协议对脉冲系统误差的影响不敏感。我们还估计了由随机噪声和退相干引起的不完美性。数值结果表明,该协议对这些不完美性具有鲁棒性。因此,该协议可能为腔量子电动力学系统中光学量子比特的量子计算提供有用的视角。本文是主题为“绝热捷径:理论、实验和跨学科视角”的一部分。