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Lyapunov-based control of a double quantum-dot qubit

机译:基于李雅普诺夫的双量子点量子位控制

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The Lyapunov control theory was used in the manipulation of a single qubit in the two-level double quantum-dot (DQD) system. The proposed control process is composed of three parts: firstly a slope pulse takes the system from a positive detuning adiabatically to the anti-crossing point, which corresponds to the resonance state of the system; then a Lyapunov-based control pulse drives the charge qubit transfer non-adiabatically; finally another slope pulse takes the system away from the anti-crossing point to keep the system stable. The charge state probability P|L〉 and the curve of Lyapunov-based control pulse were studied under different control parameters. Simulation results showed that: the designed Lyapunov-based control pulse has a rise time ~100ps, which is in the scope of the Aglient 81134A pulse generator for the implement, and it results in a significant probability 86% for transition from the initial charge state |R〉 to the desired target charge state |L〉. Although our control scheme is designed specific for the DQD system, the technique is independent of the physical architecture and has potential for wider applications.
机译:李雅普诺夫控制理论用于两级双量子点(DQD)系统中单个量子位的操纵。所提出的控制过程包括三个部分:首先,斜率脉冲使系统从绝热的正失谐状态变为反交叉点,这与系统的共振状态相对应;然后基于李雅普诺夫的控制脉冲非绝热地驱动电荷量子位传输;最后,另一个斜率脉冲使系统远离反交叉点,以保持系统稳定。研究了在不同控制参数下的荷电状态概率P | L〉和基于Lyapunov的控制脉冲的曲线。仿真结果表明:设计的基于Lyapunov的控制脉冲具有约100ps的上升时间,这在用于工具的Aglient 81134A脉冲发生器的范围内,并且从初始充电状态过渡的可能性高达86% | R〉到期望的目标电荷状态| L〉。尽管我们的控制方案是专门针对DQD系统设计的,但该技术与物理体系结构无关,并且具有广泛的应用潜力。

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