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Pendular alignment and strong chemical binding are induced in helium dimer molecules by intense laser fields

  • Qi Wei*
  • , Sabre Kais
  • , Tomokazu Yasuike
  • , Dudley Herschbach
  • *Corresponding author for this work
  • East China Normal University
  • Purdue University
  • The Open University of Japan
  • Kyoto University
  • Texas A&M University
  • Harvard University

Research output: Contribution to journalArticlepeer-review

Abstract

Intense pulsed-laser fields have provided means to both induce spatial alignment of molecules and enhance strength of chemical bonds. The duration of the laser field typically ranges from hundreds of picoseconds to a few femtoseconds. Accordingly, the induced “laser-dressed” properties can be adiabatic, existing only during the pulse, or nonadiabatic, persisting into the subsequent field-free domain. We exemplify these aspects by treating the helium dimer, in its ground (X1Σ+ g ) and first excited (A1Σ+ u ) electronic states. The ground-state dimer when field-free is barely bound, so very responsive to electric fields. We examine two laser realms, designated (I) “intrusive” and (II) “impelling.” I employs intense nonresonant laser fields, not strong enough to dislodge electrons, yet interact with the dimer polarizability to induce binding and pendular states in which the dimer axis librates about the electric field direction. II employs superintense high-frequency fields that impel the electrons to undergo quiver oscillations, which interact with the intrinsic Coulomb forces to form an effective binding potential. The dimer bond then becomes much stronger. For I, we map laser-induced pendular alignment within the X state, which is absent for the field-free dimer. For II, we evaluate vibronic transitions from the X to A states, governed by the amplitude of the quiver oscillations.

Original languageEnglish
Pages (from-to)E9058-E9066
JournalProceedings of the National Academy of Sciences of the United States of America
Volume115
Issue number39
DOIs
StatePublished - 25 Sep 2018
Externally publishedYes

Keywords

  • Chemical bonding
  • Kramers–henneberger approximation
  • Laser-induced properties
  • Pendular alignment
  • Quiver oscillations

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