A solid-state NMR and theoretical study of the O-17 electric field gradient and chemical shielding tensors of the oxonium ion in p-toluenesulfonic acid monohydrate
G. Wu et al., A solid-state NMR and theoretical study of the O-17 electric field gradient and chemical shielding tensors of the oxonium ion in p-toluenesulfonic acid monohydrate, J PHYS CH A, 104(17), 2000, pp. 4102-4107
We report a solid-state O-17 NMR study of the O-17 electric field gradient
(EFG) and chemical shielding (CS) tensors for the oxonium ion, H3O+, in p-t
oluenesulfonic acid monohydrate (TAM). Both the O-17 EFG and CS tensors of
the H3O+ ion are axially symmetric within the experimental errors. The O-17
quadrupole coupling constant (QCC) is found to be 7.05 +/- 0.02 MHz, and t
he O-17 chemical shift anisotropy (CSA)is 87 +/- 5 ppm. Experimental result
s are compared with extensive quantum chemical calculations using restricte
d Hartree-Fock approach (RHF), second-order Moller-Plesset perturbation the
ory (MP2), and density functional theory (DFT). The calculations showed tha
t the strong hydrogen-bonding environment around the H3O+ ion in TAM is res
ponsible for a reduction of approximately 3 MHz in the O-17 QCC compared to
that of an isolated H3O+ ion. The effective O-17 quadrupole moment is cali
brated at the B3LYP/cc-pVTZ level, Q = -2.400 fm(2). Using this value, we o
btained the best calculated O-17 QCC for the "bound" H3O+ ion, +7.382 MHz,
which is in reasonably good agreement with the observed value. The O-17 che
mical shielding tensor is also calculated using the GIAO (gauge-including a
tomic orbital) approach. Although the calculated isotropic O-17 chemical sh
ifts are in excellent agreement with the experimental data, the calculation
s with all the basis sets employed in the present study invariably underest
imated O-17 CSAs by approximately 20 ppm.