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Formation and propagation of ultraslow three-wave-vector optical solitons in a cold seven-level triple-A atomic system under Raman excitation

机译:拉曼激发下冷七能级三A原子系统中超慢三波矢量孤子的形成和传播

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摘要

In this article, a theoretical scheme is proposed to investigate' the formation and propagation of three-wave coupled vector optical solitons with ultraslow group velocities in a lifetime-broadened seven-state triple-A atomic system under Raman excitation. We show that in the presence of a weak applied magnetic field that removes -the degeneracy of the corresponding sublevels of the atomic medium, three continuous-wave control fields with circularly left or right polarized fields induce a quantum interference effect which can largely suppress the absorption of the three low-intensity pulsed fields, that is, the circularly σ~- (right), the linearly π, and the circularly σ~+ (left) polarized fields converted from one weak linear-polarized probe field. By means of the standard method of multiple scales, we solve the equations of motion of atomic response and probe-control electromagnetic fields and derive three-coupled nonlinear Schrodinger equations that govern the nonlinear evolution of .the envelopes of the probe fields in this scheme. We then demonstrate that because of the nonlinear coupling to one another, the three probe fields can evolve into three-wave temporal, group velocity, and amplitude-matched optical solitons under appropriate conditions, which are produced from the delicate balance of the dispersion effects and the self-and cross-phase modulation effects. This scheme may thus pave the way to generate ultraslow vector optical solitons composed of three field components in a highly resonant atomic medium and result in a substantial impact on this field of nonlinear optics.
机译:在本文中,提出了一种理论方案,以研究在拉曼激发下寿命延长的七态三A原子系统中具有超慢群速度的三波耦合矢量光孤子的形成和传播。我们表明,在存在弱磁场的情况下,该磁场消除了原子介质相应子能级的简并性,三个具有圆形左或右极化场的连续波控制场会引起量子干涉效应,从而可以大大抑制吸收从一个弱线性极化探测场转换而来的三个低强度脉冲场中的一个,即圆形σ〜-(右),线性π和圆形σ〜+(左)极化场。通过采用多尺度的标准方法,我们解决了原子响应运动和探针控制电磁场的方程,并推导了三耦合非线性Schrodinger方程,该方程控制了该方案中探针场包络线的非线性演化。然后我们证明,由于彼此之间的非线性耦合,在适当的条件下,这三个探测场可以演化为三波时间,群速度和振幅匹配的光孤子,这是由色散效应和自相位和交叉相位调制效果。因此,该方案可以为在高度共振的原子介质中生成由三个场分量组成的超慢矢量光学孤子铺平道路,并对该非线性光学领域产生实质性影响。

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