Simulating Vibrationally-Resolved X-ray Photoelectron Spectra of Flexible Molecules: Linear Alkanes C$_{n}$H$_{2n+2}$ ($n$=1-8)

Fuente: arXiv
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Autores principales: Cheng, Xiao, Wei, Minrui, Tian, Guangjun, Hua, Weijie
Formato: Preprint
Publicado: 2024
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author Cheng, Xiao
Wei, Minrui
Tian, Guangjun
Hua, Weijie
author_facet Cheng, Xiao
Wei, Minrui
Tian, Guangjun
Hua, Weijie
contents We integrated full core-hole density functional theory with Franck-Condon calculations, considering Duschinsky rotation, to simulate vibrationally-resolved C1s X-ray photoelectron spectra (XPS) of eight linear alkanes, from methane to octane (C$_{n}$H$_{2n+2}$, $n$=1--8). Results align excellently with experimental absolute binding energies and profiles. The spectrum of ethane serves as a ``spectral seed'', with each longer alkane's atom-specific spectrum displaying similar characteristics, albeit with shifts and slight intensity adjustments. Detailed assignments clarify the distinct spectra in short alkanes ($n$=1--4) and their stabilization in long alkanes ($n$=5--8). Carbons are classified as central or distal (C$_1$ and C$_2$), with central carbons contributing nearly identically to the lowest-energy feature A, while distal carbons contribute to the second lowest-energy feature B (both are 0-0 transitions). Increasing molecule size adds more central carbons, enhancing feature A and weakening feature B. Our analysis identifies two dominant Franck-Condon-active vibrations: C$^*$--H stretching ($\sim$3400-3500 cm$^{-1}$) and bending ($\sim$1400-1500 cm$^{-1}$) modes. Structural analysis shows that core ionization minimally affects alkane geometry, less than in ring compounds from previous studies. This work extends our protocol from rigid ring compounds to flexible molecules, contributing to building a high-resolution theoretical XPS library and enhancing the understanding of vibronic coupling.
format Preprint
id arxiv_https___arxiv_org_abs_2408_00589
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Simulating Vibrationally-Resolved X-ray Photoelectron Spectra of Flexible Molecules: Linear Alkanes C$_{n}$H$_{2n+2}$ ($n$=1-8)
Cheng, Xiao
Wei, Minrui
Tian, Guangjun
Hua, Weijie
Chemical Physics
Atomic and Molecular Clusters
Computational Physics
Optics
We integrated full core-hole density functional theory with Franck-Condon calculations, considering Duschinsky rotation, to simulate vibrationally-resolved C1s X-ray photoelectron spectra (XPS) of eight linear alkanes, from methane to octane (C$_{n}$H$_{2n+2}$, $n$=1--8). Results align excellently with experimental absolute binding energies and profiles. The spectrum of ethane serves as a ``spectral seed'', with each longer alkane's atom-specific spectrum displaying similar characteristics, albeit with shifts and slight intensity adjustments. Detailed assignments clarify the distinct spectra in short alkanes ($n$=1--4) and their stabilization in long alkanes ($n$=5--8). Carbons are classified as central or distal (C$_1$ and C$_2$), with central carbons contributing nearly identically to the lowest-energy feature A, while distal carbons contribute to the second lowest-energy feature B (both are 0-0 transitions). Increasing molecule size adds more central carbons, enhancing feature A and weakening feature B. Our analysis identifies two dominant Franck-Condon-active vibrations: C$^*$--H stretching ($\sim$3400-3500 cm$^{-1}$) and bending ($\sim$1400-1500 cm$^{-1}$) modes. Structural analysis shows that core ionization minimally affects alkane geometry, less than in ring compounds from previous studies. This work extends our protocol from rigid ring compounds to flexible molecules, contributing to building a high-resolution theoretical XPS library and enhancing the understanding of vibronic coupling.
title Simulating Vibrationally-Resolved X-ray Photoelectron Spectra of Flexible Molecules: Linear Alkanes C$_{n}$H$_{2n+2}$ ($n$=1-8)
topic Chemical Physics
Atomic and Molecular Clusters
Computational Physics
Optics
url https://arxiv.org/abs/2408.00589