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arXiv · 1408.4954

Extracting partial decay rates of helium from complex rotation: autoionizing resonances of the one-dimensional configurations

Abstract

Partial autoionization rates of doubly excited one-dimensional helium in the collinear Zee and eZe configuration are obtained by means of the complex rotation method. The approach presented here relies on a projection of back-rotated resonance wave functions onto singly ionized $\textrm{He}^{+}$ channel wave functions and the computation of the corresponding particle fluxes. In spite of the long-range nature of the Coulomb potential between the electrons and the nucleus, an asymptotic region where the fluxes are stationary is clearly observed. Low-lying doubly excited states are found to decay predomintantly into the nearest single-ionization continuum. This approach paves the way for a systematic analysis of the decay rates observed in higher-dimensional models, and of the role of electronic correlations and atomic structure in recent photoionization experiments.

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Klaus Zimmermann, Pierre Lugan, Felix Jörder, Nicolai Heitz, Maximilian Schmidt, Celsus Bouri, Alberto Rodriguez, Andreas Buchleitner. 2014-08-21. Extracting partial decay rates of helium from complex rotation: autoionizing resonances of the one-dimensional configurations. https://doi.org/10.1088/0953-4075%2F48%2F2%2F025001

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