English

Attosecond X-ray Core-level Chronoscopy of Aromatic Molecules

Chemical Physics 2025-05-28 v4

Abstract

Attosecond photoemission or photoionization delays are a unique probe of the structure and the electronic dynamics of matter. However, spectral congestion and spatial delocalization of valence electron wave functions set fundamental limits to the complexity of systems that can be studied and the information that can be retrieved, respectively. Using attosecond X-ray pulses from LCLS, we demonstrate the key advantages of measuring core-level delays: the photoelectron spectra remain atom-like, the measurements become element specific and the observed scattering dynamics originate from a point-like source. We exploit these unique features to reveal the effects of electronegativity and symmetry on attosecond scattering dynamics by measuring and calculating the photoionization delays between N-1s and C-1s core shells of a series of aromatic azabenzene molecules. Remarkably, the delays increase with the number of nitrogen atoms in the molecule and reveal multiple resonances. We identify two previously unknown mechanisms regulating the associated attosecond dynamics, namely the enhanced confinement of the trapped wavefunction with increasing electronegativity of the atoms and the decrease of the coupling strength among the photoemitted partial waves with increasing symmetry. This study demonstrates the unique opportunities opened by measurements of core-level photoionization delays for unraveling attosecond electron dynamics in complex matter.

Keywords

Cite

@article{arxiv.2402.17685,
  title  = {Attosecond X-ray Core-level Chronoscopy of Aromatic Molecules},
  author = {Jia-Bao Ji and Zhaoheng Guo and Taran Driver and Cynthia S. Trevisan and David Cesar and Xinxin Cheng and Joseph Duris and Paris L. Franz and James Glownia and Xiaochun Gong and Daniel Hammerland and Meng Han and Saijoscha Heck and Matthias Hoffmann and Andrei Kamalov and Kirk A. Larsen and Xiang Li and Ming-Fu Lin and Yuchen Liu and C. William McCurdy and Razib Obaid and Jordan T. ONeal and Thomas N. Rescigno and River R. Robles and Nicholas Sudar and Peter Walter and Anna L. Wang and Jun Wang and Thomas J. A. Wolf and Zhen Zhang and Kiyoshi Ueda and Robert R. Lucchese and Agostino Marinelli and James P. Cryan and Hans Jakob Wörner},
  journal= {arXiv preprint arXiv:2402.17685},
  year   = {2025}
}
R2 v1 2026-06-28T15:02:14.497Z