Guo Yu, Dong Daoyi, Shu Chuan-Cun
School of Physics and Electronic Science, Changsha University of Science and Technology, Changsha 410114, China and School of Engineering and Information Technology, University of New South Wales, Canberra, Australian Capital Territory 2600, Australia and Key Laboratory of Low Dimensional Quantum Structures and Quantum Control (Hunan Normal University), Ministry of Education, Changsha 410081, China.
School of Engineering and Information Technology, University of New South Wales, Canberra, Australian Capital Territory 2600, Australia.
Phys Chem Chem Phys. 2018 Apr 4;20(14):9498-9506. doi: 10.1039/C8CP00512E.
Achieving fast and efficient quantum state transfer is a fundamental task in physics, chemistry and quantum information science. However, the successful implementation of the perfect quantum state transfer also requires robustness under practically inevitable perturbative defects. Here, we demonstrate how an optimal and robust quantum state transfer can be achieved by shaping the spectral phase of an ultrafast laser pulse in the framework of frequency domain quantum optimal control theory. Our numerical simulations of the single dibenzoterrylene molecule as well as in atomic rubidium show that optimal and robust quantum state transfer via spectral phase modulated laser pulses can be achieved by incorporating a filtering function of the frequency into the optimization algorithm, which in turn has potential applications for ultrafast robust control of photochemical reactions.
实现快速高效的量子态转移是物理、化学和量子信息科学中的一项基本任务。然而,完美量子态转移的成功实现还需要在实际不可避免的微扰缺陷下具备鲁棒性。在此,我们展示了如何在频域量子最优控制理论框架下,通过对超快激光脉冲的光谱相位进行整形来实现最优且鲁棒的量子态转移。我们对单个二苯并苝分子以及铷原子的数值模拟表明,通过将频率的滤波函数纳入优化算法,可经由光谱相位调制的激光脉冲实现最优且鲁棒的量子态转移,这反过来对光化学反应的超快鲁棒控制具有潜在应用价值。