English

Observation of Strong Electron Correlation in Planetary Atomic Structure

Atomic Physics 2026-03-23 v2

Abstract

Unravelling two-electron correlation is a long-standing challenge at the heart of few-body quantum physics, underlying correlated phenomena across atomic, molecular and condensed-matter science. In prototypical three-body Coulomb systems, such strong correlation in doubly excited states (DESs) of planetary atomic systems leaves distinct signatures in nonsequential above-threshold double ionization (NS-ATDI) driven by coherent laser fields, yet such targeted study has long remained elusive. Here we present kinematically complete measurements of multi-photon double ionization in cold strontium atoms. Our results reveal a dominant NS-ATDI channel exhibiting well-defined band structures that encode pronounced energy and angular correlations between the two emitted electrons. Autoionization spectra confirm the presence of DESs as transition states that effectively promote the NS-ATDI process. These observations provide direct evidence that both electrons are synchronously excited and ionized via resonant high-lying DES transitions, meaning the structure-linked two-electron correlation of DES is preserved and propagated in the laser-driven time-dependent three-body system. Our work transcends the traditional paradigm of multi-photon double ionization, and fundamentally reshapes the core understanding of intrinsic electron correlation governing many-body systems in nature.

Keywords

Cite

@article{arxiv.2603.09102,
  title  = {Observation of Strong Electron Correlation in Planetary Atomic Structure},
  author = {Xinglong Yu and Yongyan Han and Zhenjie Shen and Yong-Kang Fang and Shushu Ruan and Jie Liu and Zhixian Wu and Xincheng Wang and Ahai Chen and Wei-Chao Jiang and Kiyoshi Ueda and Liang-You Peng and Yuhai Jiang},
  journal= {arXiv preprint arXiv:2603.09102},
  year   = {2026}
}
R2 v1 2026-07-01T11:11:32.072Z