论文标题
旋转相干性在飞秒脉冲驱动的氮离子激光中的作用
Role of rotational coherence in femtosecond-pulse-driven nitrogen ion lasing
论文作者
论文摘要
我们使用泵种方案在391和428 nm处实验研究了N $ _2^+$ lasing的旋转旋转极化特性。通过改变泵和种子的线性极化之间的相对角,发现391 nm激光的P和R分支的极化是反旋转的。相比之下,两个428 nm激光的分支沿泵保持极化。基于一个完整的物理模型,发现了令人困惑的异常极化特征的起源,该模型同时包括瞬态光电离子化和离子的电子,振动和旋转量子状态之间的随后耦合。IT表明,在$ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j $ j x $^2σ_g^+(ν= 0)$,这导致了391 nm激光的P和R分支的镜像对称极化。实验和理论都表明,所证明的旋转相干性在阐明n $ _2^+$ lasing的增益机理方面起着极为关键的作用,并在超快强场上开辟了通往量子光学的途径。
We experimentally investigated the rotationally resolved polarization characteristics of N$_2^+$ lasing at 391 and 428 nm using a pump-seed scheme. By varying the relative angle between the linear polarizations of the pump and seed, it is found that the polarizations of the P and R branches of 391-nm lasing are counter-rotated. By contrast, both branches of 428-nm lasing remain polarized along the pump. The origin of the puzzled abnormal polarization characteristics is found based on a complete physical model that simultaneously includes the transient photoionization and the subsequent coupling among the electronic, vibrational and rotational quantum states of ions.It suggests that the cascaded resonant Raman processes following ionization create negative coherence between the rotational states of $J$ and $J$+2 in the ionic ground state X$^2Σ_g^+(ν=0)$, which leads to mirror-symmetrical polarization for the P and R branches of 391-nm lasing. Both the experiment and theory indicate that the demonstrated rotational coherence plays an extremely pivotal role in clarifying the gain mechanism of N$_2^+$ lasing and opens up the route toward quantum optics under ultrafast strong fields.