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Diffractive imaging of a molecular rotational wavepacket with femtosecond Megaelectronvolt electron pulses

Authors :
Yang, Jie
Guehr, Markus
Vecchione, Theodore
Robinson, Matthew S.
Li, Renkai
Hartmann, Nick
Shen, Xiaozhe
Coffee, Ryan
Corbett, Jeff
Fry, Alan
Gaffney, Kelly
Gorkhover, Tais
Hast, Carsten
Jobe, Keith
Makasyuk, Igor
Reid, Alexander
Robinson, Joseph
Vetter, Sharon
Wang, Fenglin
Weathersby, Stephen
Yoneda, Charles
Centurion, Martin
Wang, Xijie
Publication Year :
2015

Abstract

Imaging changes in molecular geometries on their natural femtosecond timescale with sub-Angstrom spatial precision is one of the critical challenges in the chemical sciences, since the nuclear geometry changes determine the molecular reactivity. For photoexcited molecules, the nuclear dynamics determine the photoenergy conversion path and efficiency. We performed a gas-phase electron diffraction experiment using Megaelectronvolt (MeV) electrons, where we captured the rotational wavepacket dynamics of nonadiabatically laser-aligned nitrogen molecules. We achieved an unprecedented combination of 100 fs root-mean-squared (RMS) temporal resolution and sub-Angstrom (0.76 {\AA}) spatial resolution that makes it possible to resolve the position of the nuclei within the molecule. In addition, the diffraction patterns reveal the angular distribution of the molecules, which changes from prolate (aligned) to oblate (anti-aligned) in 300 fs. Our results demonstrate a significant and promising step towards making atomically resolved movies of molecular reactions.

Subjects

Subjects :
Physics - Atomic Physics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1510.06426
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/ncomms11232