He Pei-Lun, Lao Di, He Feng
Key Laboratory for Laser Plasmas (Ministry of Education) and School of Physics and Astronomy, Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China.
Phys Rev Lett. 2017 Apr 21;118(16):163203. doi: 10.1103/PhysRevLett.118.163203.
The exact nondipole Volkov solutions to the Schrödinger equation and Pauli equation are found, based on which a strong field theory beyond the dipole approximation is built for describing the nondipole effects in nonrelativistic laser driven electron dynamics. This theory is applied to investigate momentum partition laws for multiphoton and tunneling ionization and explicitly shows that the complex interplay of a laser field and Coulomb action may reverse the expected photoelectron momentum along the laser propagation direction. The magnetic-spin coupling does not bring observable effects on the photoelectron momentum distribution and can be neglected. Compared to the strong field approximation within the dipole approximation, this theory works in a much wider range of laser parameters and lays a solid foundation for describing nonrelativistic electron dynamics in both short wavelength and midinfrared regimes where nondipole effects are unavoidable.
找到了薛定谔方程和泡利方程精确的非偶极伏尔科夫解,并在此基础上建立了超越偶极近似的强场理论,用于描述非相对论激光驱动电子动力学中的非偶极效应。该理论被应用于研究多光子和隧穿电离的动量分配规律,并明确表明激光场与库仑作用的复杂相互作用可能会使预期的光电子动量沿激光传播方向反转。磁自旋耦合对光电子动量分布没有可观测的影响,可以忽略不计。与偶极近似下的强场近似相比,该理论在更广泛的激光参数范围内有效,为描述非偶极效应不可避免的短波长和中红外区域的非相对论电子动力学奠定了坚实的基础。