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Infrared multiple-photon dissociation spectroscopy of cationized glycine: effects of alkali metal cation size on gas-phase conformation

Authors :
P. B. Armentrout
Brandon C. Stevenson
Maryam Ghiassee
Georgia C. Boles
Giel Berden
Jos Oomens
Molecular Spectroscopy (HIMS, FNWI)
Source :
PCCP Physical Chemistry Chemical Physics, 24, pp. 22950-22959, PCCP Physical Chemistry Chemical Physics, 24, 22950-22959, Physical Chemistry Chemical Physics, 24(37), 22950-22959. Royal Society of Chemistry
Publication Year :
2022

Abstract

The gas-phase structures of cationized glycine (Gly), including complexes with Li+, Na+, K+, Rb+, and Cs+, are examined using infrared multiple-photon dissociation (IRMPD) spectroscopy utilizing light generated by a free electron laser, in conjunction with ab initio calculations. To identify the structures present in the experimental studies, measured IRMPD spectra are compared to spectra calculated at B3LYP/6-311+G(d,p) for the Li+, Na+, and K+ complexes and at B3LYP/def2TZVP for the Rb+ and Cs+ complexes. Single-point energy calculations were carried out at the B3LYP, B3P86, and MP2(full) levels using the 6-311+G(2d,2p) basis set for Li+, Na+, K+ and the def2TZVPP basis set for Rb+ and Cs+. The Li+ and Na+ complexes are identified as metal cation coordination to the amino nitrogen and carbonyl oxygen, [N,CO]-tt, although Na+(Gly) may have contributions from additional structures. The heavier metal cations coordinate to either the carbonyl oxygen, [CO]-cc, or the carbonyl oxygen and hydroxy oxygen, [CO,OH]-cc, with the former apparently preferred for Rb+ and Cs+ and the latter for K+. These two structures reside in a double-well potential and different levels of theory predict very different relative stabilities. Some experimental evidence is provided that MP2(full) theory provides the most accurate relative energies.

Details

ISBN :
978-2-295-02295-0
2-295-02295-9
ISSN :
14639076
ISBNs :
9782295022950 and 2295022959
Database :
OpenAIRE
Journal :
PCCP Physical Chemistry Chemical Physics, 24, pp. 22950-22959, PCCP Physical Chemistry Chemical Physics, 24, 22950-22959, Physical Chemistry Chemical Physics, 24(37), 22950-22959. Royal Society of Chemistry
Accession number :
edsair.doi.dedup.....19c7c6ecee489e8d1982f9c98789105d