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Revealing the effect of atomic orbitals on the phase distribution of an ionizing electron wave packet with circularly polarized two-color laser fields
Author(s) -
Kun Liu,
Min Li,
Wenhai Xie,
Keyu Guo,
Siqiang Luo,
Jiaqing Yan,
Yueming Zhou,
Peixiang Lu
Publication year - 2020
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.386299
Subject(s) - physics , wave packet , atomic orbital , atomic physics , electron , elliptical polarization , laser , photoelectric effect , optics , linear polarization , quantum mechanics
We theoretically study the interference of photoelectrons released from atomic p ± orbitals in co-rotating and counter-rotating circularly polarized two-color laser pulses consisting of a strong 400-nm field and a weak 800-nm field. We find that in co-rotating fields the interference fringes in the photoelectron momentum distributions are nearly the same for p ± orbitals, while in counter-rotating fields the interference fringes for p + and p - orbitals oscillate out of phase with respect to the electron emission angle. The simulations based on the strong-field approximation show a good agreement with the numerical solutions of the time-dependent Schrödinger equation. We find that different phase distributions of the electron wave packets emitted from p + and p - orbitals can be easily revealed by the counter-rotating circularly polarized two-color laser fields. We further show that the photoelectron interference patterns in the circularly polarized two-color laser fields record the time differences of the electron wave packets released within an optical cycle.

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