Laser agitates probability flow in atoms to form alternating current and its peak-dip phenomenon
arXiv:1607.05071 · doi:10.12677/MP.2018.83017
Abstract
By using trajectory-based approaches to quantum transition, it is found that laser can agitate the probability flow in atoms to form alternating current with the frequency of the laser. The detailed physical process of quantum transition is investigated, during which the alternating current in atomic probability flow becomes a key role connecting the external electromagnetic wave with the evolution of the quantum states in atoms. Computer was employed to simulate the physical process. The atomic alternating current may have the peak-dip phenomenon.
8 pages, 8 figures
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