Literature DB >> 17530822

The structure of the hydrated electron. Part 1. Magnetic resonance of internally trapping water anions: a density functional theory study.

Ilya A Shkrob1.   

Abstract

Density functional theory is used to rationalize magnetic parameters of hydrated electron trapped in alkaline glasses as observed using electron paramagnetic resonance (EPR) and electron spin echo envelope modulation (ESEEM) spectroscopies. To this end, model water cluster anions (n=4-8 and n=20, 24) that localize the electron internally are examined. It is shown that hyperfine coupling tensors of H/D nuclei in the water molecules are defined mainly by the cavity size and the coordination number of the electron; the water molecules in the second solvation shell play a relatively minor role. An idealized model of the hydrated electron (that is usually attributed to L. Kevan) in which six hydroxyl groups arranged in an octahedral pattern point toward the common center is shown to provide the closest match to the experimental parameters, such as isotropic and anisotropic hyperfine coupling constants for the protons (estimated from ESEEM), the second moment of the EPR spectra, and the radius of gyration. The salient feature is the significant transfer (10-20%) of spin density into the frontal O 2p orbitals of water molecules. Spin bond polarization involving these oxygen orbitals accounts for small, negative hyperfine coupling constants for protons in hydroxyl groups that form the electron-trapping cavity. In Part 2, these results are generalized for more realistic geometries of core anions obtained using a dynamic one-electron mixed quantum/classical molecular dynamics model.

Entities:  

Year:  2007        PMID: 17530822     DOI: 10.1021/jp068278m

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  4 in total

1.  A Simple ab Initio Model for the Hydrated Electron That Matches Experiment.

Authors:  Anil Kumar; Jonathan A Walker; David M Bartels; Michael D Sevilla
Journal:  J Phys Chem A       Date:  2015-08-27       Impact factor: 2.781

2.  Gamma and Ion-Beam Irradiation of DNA: Free Radical Mechanisms, Electron Effects, and Radiation Chemical Track Structure.

Authors:  Michael D Sevilla; David Becker; Anil Kumar; Amitava Adhikary
Journal:  Radiat Phys Chem Oxf Engl 1993       Date:  2016-04-30       Impact factor: 2.858

Review 3.  Reaction of Electrons with DNA: Radiation Damage to Radiosensitization.

Authors:  Anil Kumar; David Becker; Amitava Adhikary; Michael D Sevilla
Journal:  Int J Mol Sci       Date:  2019-08-16       Impact factor: 5.923

Review 4.  Visualization of chemical reaction dynamics: toward understanding complex polyatomic reactions.

Authors:  Toshinori Suzuki
Journal:  Proc Jpn Acad Ser B Phys Biol Sci       Date:  2013       Impact factor: 3.493

  4 in total

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