Abstract
The populations of long-lived spin states, in particular, populations of singlet states that are comprised of antisymmetric combinations of product states, ∫ αI ßS 〉 - ∫ ßI αS 〉, are characterized by very long lifetimes because the dipole-dipole interaction between the two "active" spins I and S that are involved in such states is inoperative as a relaxation mechanism. The relaxation rate constants of long-lived (singlet) states are therefore determined by the chemical shift anisotropy (CSA) of the active spins and by dipole-dipole interactions with passive spins. For a pair of coupled spins, the singlet-state relaxation rate constants strongly depend on the magnitudes and orientations of the CSA tensors. The relaxation properties of long-lived states therefore reveal new information about molecular symmetry and structure and about spectral density functions that characterize the dynamic behavior. © 2007 American Institute of Physics.
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CITATION STYLE
Ahuja, P., Sarkar, R., Vasos, P. R., & Bodenhausen, G. (2007). Molecular properties determined from the relaxation of long-lived spin states. Journal of Chemical Physics, 127(13). https://doi.org/10.1063/1.2778429
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