首页> 外文期刊>Journal of Modern Optics >Control of population and atomic coherence by adiabatic rapid passage and optimization of coherent anti-Stokes Raman scattering signal by maximal coherence
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Control of population and atomic coherence by adiabatic rapid passage and optimization of coherent anti-Stokes Raman scattering signal by maximal coherence

机译:绝热快速通过控制种群和原子相干性,并通过最大相干性优化相干抗斯托克斯拉曼散射信号

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Robust control of atomic coherence and population transfer among Zeeman sublevels in the ground states of rubidium atom is investigated using adiabatic rapid passage in a nanosecond time scale, which is smaller than the lifetime of first excited Rb. It is shown that a slight change in the pump pulse time delay relative to the Stokes pulse leads to a significant modification of atomic coherence and population transfer, consequently having remarkable impacts on the generation of coherent anti-Stokes Raman scattering (CARS) signal and probe pulse absorption. This coherent control of quantum state and population is presented by numerical simulations based on self-consistent set of density matrix equations and Maxwell equations as well as experimental demonstration in rubidium atom with different atomic densities. Experimental observations are in good agreement with numerical calculations.
机译:使用纳秒级的绝热快速通道,研究了Ze原子基态中Zeeman子级之间原子相干性和人口转移的鲁棒控制,该时间小于纳秒激发的Rb的寿命。结果表明,相对于斯托克斯脉冲,泵浦脉冲时间延迟的细微变化会导致原子相干性和原子转移的显着改变,因此,对相干抗斯托克斯拉曼散射(CARS)信号和探针的产生产生显着影响脉冲吸收。通过基于密度矩阵方程和麦克斯韦方程组的自洽集的数值模拟以及在不同原子密度的rub原子上的实验证明,对这种量子态和总体的相干控制进行了仿真。实验观察与数值计算非常吻合。

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