论文标题
强型单极激光场中的相对论电子自旋动力学
Relativistic electron spin dynamics in a strong unipolar laser field
论文作者
论文摘要
分析了电子自旋与线性极化激光场相互作用的行为。与以前对问题的考虑相反,电子的初始状态代表局部波数据包,并引入了用于激光脉冲的空间包膜,这使人们可以考虑两个对象的有限尺寸。特别注意具有高度单极性的超平脉冲。在经典的处理(非同性主义和相对论)中,清楚地证明了电子自旋投影的变化与脉搏的电场区域之间的比例。我们还根据DIRAC方程对电子自旋动力学进行计算。及时进化电子波函数,我们以各种形式计算自旋算子的平均值。结果表明,使用Foldy-Wouthuysen运算符时,经典的相对论预测会准确地再现。当使用Lorentz变换和粒子静止框架中的非层次(Pauli)自旋算子时,获得了相同的结果。
The behavior of an electron spin interacting with a linearly polarized laser field is analyzed. In contrast to previous considerations of the problem, the initial state of the electron represents a localized wave packet, and a spatial envelope is introduced for the laser pulse, which allows one to take into account the finite size of both objects. Special attention is paid to ultrashort pulses possessing a high degree of unipolarity. Within a classical treatment (both nonrelativistic and relativistic), proportionality between the change of the electron spin projections and the electric field area of the pulse is clearly demonstrated. We also perform calculations of the electron spin dynamics according to the Dirac equation. Evolving the electron wave function in time, we compute the mean values of the spin operator in various forms. It is shown that the classical relativistic predictions are accurately reproduced when using the Foldy-Wouthuysen operator. The same results are obtained when using the Lorentz transformation and the nonrelativistic (Pauli) spin operator in the particle's rest frame.