Role of excited states in resonant charge transfer during Li+ backscattering from MoS2: A multi-orbital theoretical study

We present a theoretical investigation of resonant charge transfer in low-energy Li+ ions backscattered from a MoS2 surface, focusing on the influence of excited projectile states. Using a time-dependent Anderson model in the infinite-U limit, we evaluate the individual contributions from the Li 2s, 2px, 2py, and 2pz orbitals to the final charge state distribution. The Hamiltonian parameters are computed using an expanded Huzinaga basis set that explicitly incorporates lithium's 2p orbitals. Each orbital channel is treated separately, and electronic correlation effects are introduced approximately through a probabilistic exclusion principle applied to the final charge state. Theoretical calculations demonstrate that including 2p channels enhances the agreement with previously reported experimental neutral fractions, where the single-channel descriptions show noticeable discrepancies. Among excited states, the 2pz orbital oriented perpendicular to the surface contributes most significantly due to its spatial extension toward the substrate. Examination of temporal evolution reveals that independent channel occupations exceed unity at small projectile-surface separations, highlighting the necessity of dynamical correlation treatments. These findings establish that excited states make non-negligible contributions to charge exchange processes for alkali ions interacting with transition metal dichalcogenide surfaces and should be incorporated for accurate quantitative modeling.

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Publication Details

Journal
The Journal of Chemical Physics
Published
2026-08-24
DOI
https://doi.org/10.1063/5.0338584
Primary Topic
Spectroscopy and Quantum Chemical Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Role of excited states in resonant charge transfer during Li+ backscattering from MoS2: A multi-orbital theoretical study

M. A. Romero, Faustino G. Ibarlucea, Thomas A. Balsamo
The Journal of Chemical Physics
Spectroscopy and Quantum Chemical Studies
article

Role of excited states in resonant charge transfer during Li+ backscattering from MoS2: A multi-orbital theoretical study

M. A. Romero, Faustino G. Ibarlucea, Thomas A. Balsamo
article en

Abstract

We present a theoretical investigation of resonant charge transfer in low-energy Li+ ions backscattered from a MoS2 surface, focusing on the influence of excited projectile states. Using a time-dependent Anderson model in the infinite-U limit, we evaluate the individual contributions from the Li 2s, 2px, 2py, and 2pz orbitals to the final charge state distribution. The Hamiltonian parameters are computed using an expanded Huzinaga basis set that explicitly incorporates lithium's 2p orbitals. Each orbital channel is treated separately, and electronic correlation effects are introduced approximately through a probabilistic exclusion principle applied to the final charge state. Theoretical calculations demonstrate that including 2p channels enhances the agreement with previously reported experimental neutral fractions, where the single-channel descriptions show noticeable discrepancies. Among excited states, the 2pz orbital oriented perpendicular to the surface contributes most significantly due to its spatial extension toward the substrate. Examination of temporal evolution reveals that independent channel occupations exceed unity at small projectile-surface separations, highlighting the necessity of dynamical correlation treatments. These findings establish that excited states make non-negligible contributions to charge exchange processes for alkali ions interacting with transition metal dichalcogenide surfaces and should be incorporated for accurate quantitative modeling.

The Journal of Chemical PhysicsVol. 165(8)
Universidad de Santiago de Chile (CL), National University of Santiago del Estero (AR), Instituto de Física del Litoral (AR)
Consejo Nacional de Investigaciones Científicas y Técnicas, Universidad Nacional del Litoral
Reduced inequalities
Openalex Percentile: Top 64%
Spectroscopy and Quantum Chemical Studies
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