<p>When matter interacts with energetic radiation it can undergo sudden, or impulsive, ionization. This process can drive chemical change and occurs widely in space and planetary atmospheres, yet its comprehensive description challenges our current theoretical and computational capabilities as it requires advanced treatment of electron correlation and nonadiabatic dynamics beyond the Born–Oppenheimer approximation. Here we measure the response of the <i>para</i>-aminophenol molecule to sudden ionization. Using attosecond X-ray absorption spectroscopy, we resolve the ultrafast dynamics of the ionized molecule with atomic precision. A subfemtosecond decay corresponds to states undergoing non-radiative decay, whereas few-femtosecond oscillatory signatures are associated with electronic wavepacket motion in stable cation states that later couple to nuclear motion. We compare our measurement with state-of-the-art computational modelling, qualitatively reproducing the observed response across multiple timescales. These results provide a benchmark for computational models of sudden ionization and ultrafast charge motion in matter.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Attosecond response of molecules to impulsive ionization

  • Taran Driver,
  • Zhaoheng Guo,
  • Erik Isele,
  • Gilbert Grell,
  • Marco Ruberti,
  • Jordan T. O’Neal,
  • Oliver Alexander,
  • Sandra Beauvarlet,
  • David Cesar,
  • Joseph Duris,
  • Douglas Garratt,
  • Kirk A. Larsen,
  • Siqi Li,
  • Přemysl Kolorenč,
  • Gregory A. McCracken,
  • Daniel Tuthill,
  • Zifan Wang,
  • Nora Berrah,
  • Christoph Bostedt,
  • Kurtis Borne,
  • Xinxin Cheng,
  • Louis F. DiMauro,
  • Gilles Doumy,
  • Paris L. Franz,
  • Andrei Kamalov,
  • Xiang Li,
  • Ming-Fu Lin,
  • Razib Obaid,
  • Antonio Pícon,
  • River R. Robles,
  • Daniel Rolles,
  • Artem Rudenko,
  • Moniruzzaman Shaikh,
  • Daniel S. Slaughter,
  • Nicholas S. Sudar,
  • Emily Thierstein,
  • Kiyoshi Ueda,
  • Enliang Wang,
  • Anna L. Wang,
  • Thorsten Weber,
  • Thomas J. A. Wolf,
  • Linda Young,
  • Zhen Zhang,
  • Vitali Averbukh,
  • Oliver Gessner,
  • Philip H. Bucksbaum,
  • Matthias F. Kling,
  • Alicia Palacios,
  • Fernando Martín,
  • Jon P. Marangos,
  • Peter Walter,
  • Agostino Marinelli,
  • James P. Cryan

摘要

When matter interacts with energetic radiation it can undergo sudden, or impulsive, ionization. This process can drive chemical change and occurs widely in space and planetary atmospheres, yet its comprehensive description challenges our current theoretical and computational capabilities as it requires advanced treatment of electron correlation and nonadiabatic dynamics beyond the Born–Oppenheimer approximation. Here we measure the response of the para-aminophenol molecule to sudden ionization. Using attosecond X-ray absorption spectroscopy, we resolve the ultrafast dynamics of the ionized molecule with atomic precision. A subfemtosecond decay corresponds to states undergoing non-radiative decay, whereas few-femtosecond oscillatory signatures are associated with electronic wavepacket motion in stable cation states that later couple to nuclear motion. We compare our measurement with state-of-the-art computational modelling, qualitatively reproducing the observed response across multiple timescales. These results provide a benchmark for computational models of sudden ionization and ultrafast charge motion in matter.