Low-Energy Protons in Strong-Field Dissociation of H 2 + via Dipole-Transitions at Large Bond Lengths

Author:

Pan Shengzhe1,Hu Chenxi2,Zhang Zhaohan2,Lu Peifen1,Lu Chenxu1,Zhou Lianrong1,Wang Jiawei1,Sun Fenghao1,Qiang Junjie1,Li Hui1,Ni Hongcheng1,Gong Xiaochun1,He Feng23,Wu Jian134

Affiliation:

1. State Key Laboratory of Precision Spectroscopy, East China Normal University, Shanghai 200241, China

2. Key Laboratory for Laser Plasmas (Ministry of Education) and School of Physics and Astronomy, Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China

3. CAS Center for Excellence in Ultra-Intense Laser Science, Shanghai 201800China

4. Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi 030006, China

Abstract

More than ten years ago, the observation of the low-energy structure in the photoelectron energy spectrum, regarded as an “ionization surprise,” has overthrown our understanding of strong-field physics. However, the similar low-energy nuclear fragment generation from dissociating molecules upon the photon energy absorption, one of the well-observed phenomena in light-molecule interaction, still lacks an unambiguous mechanism and remains mysterious. Here, we introduce a time-energy-resolved manner using a multicycle near-infrared femtosecond laser pulse to identify the physical origin of the light-induced ultrafast dynamics of molecules. By simultaneously measuring the bond-stretching times and photon numbers involved in the dissociation of H 2 + driven by a polarization-skewed laser pulse, we reveal that the low-energy protons (below 0.7 eV) are produced via dipole-transitions at large bond lengths. The observed low-energy protons originate from strong-field dissociation of high vibrational states rather than the low ones of H 2 + cation, which is distinct from the well-accepted bond-softening picture. Further numerical simulation of the time-dependent Schrödinger equation unveils that the electronic states are periodically distorted by the strong laser field, and the energy gap between the field-dressed transient electronic states may favor the one- or three-photon transitions at the internuclear distance larger than 5 a.u. The time-dependent scenario and our time-energy-resolved approach presented here can be extended to other molecules to understand the complex ultrafast dynamics.

Funder

East China Normal University

Shanghai Municipal Education Commission

Projects from Shanghai Science and Technology Commission

111 Project of China

National Natural Science Foundation of China

National Key R&D Program of China

Publisher

American Association for the Advancement of Science (AAAS)

Reference36 articles.

1. Strong-field photoionization revisited;Blaga C. I.;Nature Physics,2009

2. Classical aspects in above-threshold ionization with a midinfrared strong laser field;Quan W.;Physical Review Letters,2009

3. Ionization surprise;Faisal F. H. M.;Nature Physics,2009

4. Origin of unexpected low energy structure in photoelectron spectra induced by midinfrared strong laser fields;Liu C. P.;Physical Review Letters,2010

5. Low-energy structures in strong field ionization revealed by quantum orbits;Yan T.;Physical Review Letters,2010

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