Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation

Zero-point vibrational level averaging for electron spin resonance (ESR) and muon spin resonance (µSR) hyperfine coupling constants (HFCCs) are computed for H and Mu isotopomers of the cyclohexadienyl radical. A local mode approximation previously developed for computation of the effect of replaceme...

Full description

Bibliographic Details
Main Authors: Bruce S. Hudson, Suzanne K. Chafetz
Format: Article
Language:English
Published: MDPI AG 2013-04-01
Series:Molecules
Subjects:
DFT
Online Access:http://www.mdpi.com/1420-3049/18/5/4906
id doaj-404c86e5c3874da69f80edc2a65c86fa
record_format Article
spelling doaj-404c86e5c3874da69f80edc2a65c86fa2020-11-24T20:54:54ZengMDPI AGMolecules1420-30492013-04-011854906491610.3390/molecules18054906Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change ApproximationBruce S. HudsonSuzanne K. ChafetzZero-point vibrational level averaging for electron spin resonance (ESR) and muon spin resonance (µSR) hyperfine coupling constants (HFCCs) are computed for H and Mu isotopomers of the cyclohexadienyl radical. A local mode approximation previously developed for computation of the effect of replacement of H by D on 13C-NMR chemical shifts is used. DFT methods are used to compute the change in energy and HFCCs when the geometry is changed from the equilibrium values for the stretch and both bend degrees of freedom. This variation is then averaged over the probability distribution for each degree of freedom. The method is tested using data for the methylene group of C6H7, cyclohexadienyl radical and its Mu analog. Good agreement is found for the difference between the HFCCs for Mu and H of CHMu and that for H of CHMu and CH2 of the parent radical methylene group. All three of these HFCCs are the same in the absence of the zero point average, a one-parameter fit of the static HFCC, a(0), can be computed. That value, 45.2 Gauss, is compared to the results of several fixed geometry electronic structure computations. The HFCC values for the ortho, meta and para H atoms are then discussed.http://www.mdpi.com/1420-3049/18/5/4906muoncyclohexadienylspin resonancezero-pointhyperfine couplingDFT
collection DOAJ
language English
format Article
sources DOAJ
author Bruce S. Hudson
Suzanne K. Chafetz
spellingShingle Bruce S. Hudson
Suzanne K. Chafetz
Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation
Molecules
muon
cyclohexadienyl
spin resonance
zero-point
hyperfine coupling
DFT
author_facet Bruce S. Hudson
Suzanne K. Chafetz
author_sort Bruce S. Hudson
title Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation
title_short Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation
title_full Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation
title_fullStr Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation
title_full_unstemmed Zero-Point Corrections for Isotropic Coupling Constants for Cyclohexadienyl Radical, C6H7 and C6H6Mu: Beyond the Bond Length Change Approximation
title_sort zero-point corrections for isotropic coupling constants for cyclohexadienyl radical, c6h7 and c6h6mu: beyond the bond length change approximation
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2013-04-01
description Zero-point vibrational level averaging for electron spin resonance (ESR) and muon spin resonance (µSR) hyperfine coupling constants (HFCCs) are computed for H and Mu isotopomers of the cyclohexadienyl radical. A local mode approximation previously developed for computation of the effect of replacement of H by D on 13C-NMR chemical shifts is used. DFT methods are used to compute the change in energy and HFCCs when the geometry is changed from the equilibrium values for the stretch and both bend degrees of freedom. This variation is then averaged over the probability distribution for each degree of freedom. The method is tested using data for the methylene group of C6H7, cyclohexadienyl radical and its Mu analog. Good agreement is found for the difference between the HFCCs for Mu and H of CHMu and that for H of CHMu and CH2 of the parent radical methylene group. All three of these HFCCs are the same in the absence of the zero point average, a one-parameter fit of the static HFCC, a(0), can be computed. That value, 45.2 Gauss, is compared to the results of several fixed geometry electronic structure computations. The HFCC values for the ortho, meta and para H atoms are then discussed.
topic muon
cyclohexadienyl
spin resonance
zero-point
hyperfine coupling
DFT
url http://www.mdpi.com/1420-3049/18/5/4906
work_keys_str_mv AT bruceshudson zeropointcorrectionsforisotropiccouplingconstantsforcyclohexadienylradicalc6h7andc6h6mubeyondthebondlengthchangeapproximation
AT suzannekchafetz zeropointcorrectionsforisotropiccouplingconstantsforcyclohexadienylradicalc6h7andc6h6mubeyondthebondlengthchangeapproximation
_version_ 1716793402311311360