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Ring Current Effects in Crystals. Evidence from 13C Chemical Shift Tensors for Intermolecular Shielding in 4,7-Di-t-butylacenaphthene versus 4,7-Di-t-butylacenaphthylene.

Authors :
Zhiru Ma
Merrill D. Halling
Mark S. Solum
James K. Harper
Anita M. Orendt
Julio C. Facelli
Ronald J. Pugmire
David M. Grant
Aaron W. Amick
Lawrence T. Scott
Source :
Journal of Physical Chemistry A. Mar2007, Vol. 111 Issue 10, p2020-2027. 8p.
Publication Year :
2007

Abstract

13C chemical shift tensor data from 2D FIREMAT spectra are reported for 4,7-di-t-butylacenaphthene and 4,7-di-t-butylacenaphthylene. In addition, calculations of the chemical shielding tensors were completed at the B3LYP/6-311G level of theory. While the experimental tensor data on 4,7-di-t-butylacenaphthylene are in agreement with theory and with previous data on polycyclic aromatic hydrocarbons, the experimental and theoretical data on 4,7-di-t-butylacenaphthene lack agreement. Instead, larger than usual differences are observed between the experimental chemical shift components and the chemical shielding tensor components calculated on a single molecule of 4,7-di-t-butylacenaphthene, with a root mean square (rms) error of ±7.0 ppm. The greatest deviation is concentrated in the component perpendicular to the aromatic plane, with the largest value being a 23 ppm difference between experiment and theory for the 13CH2carbon 11component. These differences are attributed to an intermolecular chemical shift that arises from the graphitelike, stacked arrangement of molecules found in the crystal structure of 4,7-di-t-butylacenaphthene. This conclusion is supported by a calculation on a trimer of molecules, which improves the agreement between experiment and theory for this component by 14 ppm and reduces the overall rms error between experiment and theory to 4.0 ppm. This intermolecular effect may be modeled with the use of nuclei independent chemical shieldings (NICS) calculations and is also observed in the isotropic 1H chemical shift of the CH2protons as a 4.2 ppm difference between the solution value and the solid-state chemical shift measured via a 13C−1H heteronuclear correlation experiment. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10895639
Volume :
111
Issue :
10
Database :
Academic Search Index
Journal :
Journal of Physical Chemistry A
Publication Type :
Academic Journal
Accession number :
24395990
Full Text :
https://doi.org/10.1021/jp068400h