Theoretical study of the effects of autoionizing resonances in XUV pump – IR probe photoelectron spectrum of N<sub>2</sub>
POSTER
Abstract
We provide detailed theoretical investigation of the effects of autoionizing resonances on XUV pump -- IR probe photoelectron spectrum of N2 by solving the coupled-channel time-dependent Schrodinger equation for coupled electron-nuclear dynamics. N2 is first excited by ~14.15 eV extreme-ultraviolet (XUV) photons to valence b’1Σu+ state. It is then probed by the absorption of two or three near-infrared (NIR) photons (800 nm). The coherent superposition of the wave packet on the valence b’1Σu+ state manifests in the beat frequency of the photoelectron spectrum of N2+. Our simulations agree well with the experimental data. In addition, two autoionizing Rydberg states converging to the excited A2Πu and B2Σu N2+ cores are accessed by the resonant absorption of NIR photons via phases and amplitudes of the oscillations of the photoelectron spectrum. This work shows the capability of time-resolved photoelectron spectroscopy as a powerful tool for characterizing the properties of such resonances.
Presenters
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Hung V Hoang
Department of Physics, Kansas State University, Kansas State University
Authors
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Hung V Hoang
Department of Physics, Kansas State University, Kansas State University
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Pengju Zhang
Laboratory for Physical Chemistry, ETH Zurich, Switzerland, ETH Zurich
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Hans Jakob Wörner
ETH Zurich
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Anh-Thu Le
Missouri University of Science and Technology, Department of Physics, University of Connecticut, University of Connecticut