Effect of Charge Transfer and Solvation on X‐Ray Absorption Near‐Edge Spectra in Microsolvated Environment

Electron delocalization in microsolvated clusters can substantially modify the character of electronic states accessed after core excitation. In this work, the K‐edge XANES spectra of [Al(H 2 O) n ] 3+ , with n = 1–6 complexes, are examined using the fc‐CVS‐EOM‐CCSD and CVS‐ADC(2)‐x methods. We evaluate the influence of progressive hydration within first‐ and second‐shell configurations on the core‐excited electronic structure. Systematic variations occur in spectral properties for excitations into valence‐like 3s, 3p, 4s, and 3d states. The charge–transfer analysis of representative 1s → 3p transitions indicates changes in spatial distribution and degree of excited‐electron delocalization. Our results demonstrate the selective dependence of solvation geometry on governing the Al K‐edge spectral features and the comparative application of highly correlated wave function approaches providing a method‐resolved picture of the underlying microsolvation effect.

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Publication Details

Journal
ChemPhysChem
Published
2026-10-04
DOI
https://doi.org/10.1002/cphc.70576
Primary Topic
X-ray Spectroscopy and Fluorescence Analysis
Type
article
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article

Effect of Charge Transfer and Solvation on X‐Ray Absorption Near‐Edge Spectra in Microsolvated Environment

Aryya Ghosh, Ninad Pradeep Tirlotkar
ChemPhysChem
X-ray Spectroscopy and Fluorescence Analysis
article

Effect of Charge Transfer and Solvation on X‐Ray Absorption Near‐Edge Spectra in Microsolvated Environment

Aryya Ghosh, Ninad Pradeep Tirlotkar
article en

Abstract

Electron delocalization in microsolvated clusters can substantially modify the character of electronic states accessed after core excitation. In this work, the K‐edge XANES spectra of [Al(H 2 O) n ] 3+ , with n = 1–6 complexes, are examined using the fc‐CVS‐EOM‐CCSD and CVS‐ADC(2)‐x methods. We evaluate the influence of progressive hydration within first‐ and second‐shell configurations on the core‐excited electronic structure. Systematic variations occur in spectral properties for excitations into valence‐like 3s, 3p, 4s, and 3d states. The charge–transfer analysis of representative 1s → 3p transitions indicates changes in spatial distribution and degree of excited‐electron delocalization. Our results demonstrate the selective dependence of solvation geometry on governing the Al K‐edge spectral features and the comparative application of highly correlated wave function approaches providing a method‐resolved picture of the underlying microsolvation effect.

ChemPhysChemVol. 27(19)
Ashoka University (IN)
Openalex Percentile: Top 12%
X-ray Spectroscopy and Fluorescence Analysis
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