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Numerical simulation of the double-to-single ionization ratio for the helium atom in strong laser fields

机译:强激光场中氦原子双电离比的数值模拟

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We present calculations on the ratio between double and single ionization of helium by a strong laser pulse at a wavelength of 780 nm using the quantitative rescattering (QRS) model. According to this model, the yield for the doubly charged ion He2+ can be obtained by multiplying the returning electron wave packet (RWP) with the total cross sections (TCSs) for electron impact ionization and electron impact excitation of He+ in the singlet spin channel. The singlet constraint was imposed since the interaction of the helium atom with the laser and the recollision processes both preserve the total spin of the system. An R-matrix (close-coupling) code is used to obtain accurate TCSs, while the RWPs, according to the QRS, are calculated by the strong-field approximation for high-energy photoelectrons. The laser field, which lowers the required energy for the electron to escape from the nucleus at the time of recollision, is also taken into account. The simulated results are in good agreement with the measured He2+ /He+ ratio over a broad range of laser intensities. The result demonstrates that the QRS approach based on the rescattering model is fully capable of quantitatively interpreting nonsequential double ionization processes.
机译:我们使用定量散射(QRS)模型,通过在780 nm波长处的强激光脉冲,对氦气的两次和一次电离之间的比率进行了计算。根据该模型,可以通过将返回的电子波包(RWP)乘以总截面(TCS)来获得双电荷离子He2 +的产率,以用于单重态自旋通道中He +的电子碰撞电离和电子碰撞激发。由于氦原子与激光的相互作用以及再碰撞过程都保留了系统的整体自旋,因此施加了单重态约束。 R矩阵(紧密耦合)代码用于获得准确的TCS,而根据QRS,RWP通过高能光电子的强场近似计算得出。还考虑了激光场,该场降低了电子在重新碰撞时从核中逸出所需的能量。模拟结果与在较宽的激光强度范围内测得的He2 + / He +比值非常吻合。结果表明,基于重散射模型的QRS方法完全能够定量解释非顺序的双电离过程。

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