English

Controlling the Photoelectric Effect in the Time Domain

Atomic Physics 2019-11-28 v2

Abstract

When an atom or molecule absorbs a high-energy photon, an electron is emitted with a well-defined energy and a highly-symmetric angular distribution, ruled by energy quantization and parity conservation. These rules seemingly break down when small quantum systems are exposed to short and intense light pulses, which raise the question of their universality for the simplest case of the photoelectric effect. Here we investigate the photoionization of helium by a sequence of attosecond pulses in the presence of a weak infrared dressing field. We continuously control the energy and introduce an asymmetry in the emission direction of the photoelectrons, thus contradicting well established quantum-mechanical predictions. This control is possible due to an extreme temporal confinement of the light-matter interaction. Our work extends time-domain coherent control schemes to one of the fastest processes in nature, the photoelectric effect.

Keywords

Cite

@article{arxiv.1908.09508,
  title  = {Controlling the Photoelectric Effect in the Time Domain},
  author = {Yu-Chen Cheng and Sara Mikaelsson and Saikat Nandi and Lisa Rämisch and Chen Guo and Stefanos Carlström and Anne Harth and Jan Vogelsang and Miguel Miranda and Cord L. Arnold and Anne L'Huillier and Mathieu Gisselbrecht},
  journal= {arXiv preprint arXiv:1908.09508},
  year   = {2019}
}

Comments

18 pages, 4 figures

R2 v1 2026-06-23T10:56:33.651Z