论文标题
捷径辅助的高保真多态搅拌
High-fidelity multistate STIRAP assisted by shortcut fields
论文作者
论文摘要
多态刺激的拉曼绝热通道(Stirap)是一个过程,它允许在连接链连接的量子系统的两端之间绝热种群转移。该过程需要驱动脉冲场(泵和stokes)的较大时间区域,以抑制非绝热耦合,从而使绝热进化成为可能。为此,在本文中提出了多态搅拌的变化,该搅拌加速并改善了种群转移。除了通常的泵和stokes字段外,它使用了在状态之间施加的快捷场,这些捷径构成了系统的黑暗状态。快捷方式取消了黑暗状态与其他绝热状态之间的耦合,从而(在理想情况下)在链的两个端状态之间的单位过渡概率中导致(在理想情况下)。五个状态系统的特定示例是由两个退化级别的磁性级别的磁性级别形成的,具有角矩$ j_g = 2 $和$ j_e = 1 $或$ j_e = 2 $,详细考虑了该快捷键字段分析得出。所提出的方法比通常的“绝热捷径”配方更简单,该食谱规定了系统所有状态之间的快捷场,而本提案仅在形成黑暗状态的超级频道之间使用捷径字段。结果在高保真量子控制至关重要的应用中具有潜在的兴趣。量子信息,原子光学,超速分子的形成,腔QED等。
Multistate stimulated Raman adiabatic passage (STIRAP) is a process which allows for adiabatic population transfer between the two ends of a chainwise-connected quantum system. The process requires large temporal areas of the driving pulsed fields (pump and Stokes) in order to suppress the nonadiabatic couplings and thereby to make adiabatic evolution possible. To this end, in the present paper a variation of multistate STIRAP, which accelerates and improves the population transfer, is presented. In addition to the usual pump and Stokes fields it uses shortcut fields applied between the states, which form the dark state of the system. The shortcuts cancel the couplings between the dark state and the other adiabatic states thereby resulting (in the ideal case) in a unit transition probability between the two end states of the chain. Specific examples of five-state systems formed of the magnetic sublevels of the transitions between two degenerate levels with angular momenta $J_g=2$ and $J_e=1$ or $J_e=2$ are considered in detail, for which the shortcut fields are derived analytically. The proposed method is simpler than the usual "shortcuts to adiabaticity" recipe, which prescribes shortcut fields between all states of the system, while the present proposal uses shortcut fields between the sublevels forming the dark state only. The results are of potential interest in applications where high-fidelity quantum control is essential, e.g. quantum information, atom optics, formation of ultracold molecules, cavity QED, etc.