Liu Kunlong, Barth Ingo
Max-Planck-Institut für Mikrostrukturphysik, Weinberg 2, D-06120 Halle (Saale), Germany.
Phys Rev Lett. 2017 Dec 15;119(24):243204. doi: 10.1103/PhysRevLett.119.243204.
The tunneling site of the electron in a molecule exposed to a strong laser field determines the initial position of the ionizing electron and, as a result, has a large impact on the subsequent ultrafast electron dynamics on the polyatomic Coulomb potential. Here, the tunneling site of the electron of H_{2}^{+} ionized by a strong circularly polarized (CP) laser pulse is studied by numerically solving the time-dependent Schrödinger equation. We show that the electron removed from the down-field site is directly driven away by the CP field and the lateral photoelectron momentum distribution (LPMD) exhibits a Gaussian-like distribution, whereas the corresponding LPMD of the electron removed from the up-field site differs from the Gaussian shape due to the Coulomb focusing and scattering by the down-field core. Our current study presents the direct evidence clarifying a long-standing controversy over the tunneling site in H_{2}^{+} and raises the important role of the tunneling site in strong-field molecular ionization.
在强激光场作用下,分子中电子的隧穿位置决定了电离电子的初始位置,因此对后续在多原子库仑势上的超快电子动力学有很大影响。在此,通过数值求解含时薛定谔方程,研究了被强圆偏振(CP)激光脉冲电离的H₂⁺离子电子的隧穿位置。我们表明,从低场位置移除的电子被CP场直接驱离,横向光电子动量分布(LPMD)呈现出类似高斯的分布,而从高场位置移除的电子的相应LPMD由于低场核心的库仑聚焦和散射而不同于高斯形状。我们目前的研究提供了直接证据,澄清了关于H₂⁺中隧穿位置的长期争议,并凸显了隧穿位置在强场分子电离中的重要作用。