HEDPS, Center for Applied Physics and Technology, Peking University, Beijing 100084, China, and Institute of Applied Physics and Computational Mathematics, P.O. Box 8009, Beijing 100088, China.
Institute of Theoretical Physics and Department of Physics, Shanxi University, 030006 Taiyuan, China.
Phys Rev Lett. 2014 Feb 21;112(7):073002. doi: 10.1103/PhysRevLett.112.073002. Epub 2014 Feb 20.
So far, nonsequential double ionization (NSDI) of atoms can be well understood within a semiclassical or even classical picture. No quantum effect appears to be required to explain the data observed. We theoretically study electron correlation resulting from NSDI of argon in a low-intensity laser field using a quantum-mechanical S-matrix theory. We show that quantum interference between the contributions of different intermediate excited states of the singly charged argon ion produces a transition from back-to-back to side-by-side emission with increasing laser intensity, which is in close agreement with the experimental data. For higher intensities, this transition is enhanced by the consequences of depletion of the excited states.
到目前为止,原子的非序列双电离(NSDI)可以很好地用半经典甚至经典图像来理解。似乎不需要量子效应来解释所观察到的数据。我们使用量子力学 S 矩阵理论理论上研究了低强度激光场中氩原子 NSDI 产生的电子相关。我们表明,单电荷氩离子不同中间激发态贡献之间的量子干涉产生了从背靠背到并排发射的转变,随着激光强度的增加,这与实验数据非常吻合。对于更高的强度,这种转变会因激发态耗尽的结果而增强。