Nuclear Overhauser effect: Difference between revisions

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The ''nuclear overhauser effect'' (Noe) is when irradiation at the resonance frequency of one nucleus in a molecule causes changes in the intensity of a signal at a different frequency corresponding to another nucleus.<ref>Overhauser, A. W. (1953). Phys. Rev. 92, 411 </ref>  (Noe).  A nuclear overhauser effect is due to dipole-dipole interactions between the magnetic moments of the pair of nuclei. Unlike J-coupling, this interaction is not mediated through bonds and hence it may be possible to observe the nuclear overhauser effect between pairs of nuclei separated by many bonds provided that they are in spatial proximity. The strength of the observable Nuclear overhauser effect for molecules in solution is proportional to the inverse of the sixth power of the distance between the two nuclei due to averaging caused by rotational motion.  Both the magnitude as well as the sign of the nuclear overhauser effect depend on the rotational frequencies of the pair of nuclei with respect to the applied magnetic field.
The '''nuclear overhauser effect''' (Noe) is when irradiation at the resonance frequency of one nucleus in a molecule causes changes in the intensity of a signal at a different frequency corresponding to another nucleus.<ref>Overhauser, A. W. (1953). Phys. Rev. 92, 411 </ref>  (Noe).  A nuclear overhauser effect is due to dipole-dipole interactions between the magnetic moments of the pair of nuclei. Unlike J-coupling, this interaction is not mediated through bonds and hence it may be possible to observe the nuclear overhauser effect between pairs of nuclei separated by many bonds provided that they are in spatial proximity. The strength of the observable Nuclear overhauser effect for molecules in solution is proportional to the inverse of the sixth power of the distance between the two nuclei due to averaging caused by rotational motion.  Both the magnitude as well as the sign of the nuclear overhauser effect depend on the rotational frequencies of the pair of nuclei with respect to the applied magnetic field.


The Noe enhancement is quantitatively defined as  
The Noe enhancement is quantitatively defined as  

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The nuclear overhauser effect (Noe) is when irradiation at the resonance frequency of one nucleus in a molecule causes changes in the intensity of a signal at a different frequency corresponding to another nucleus.[1] (Noe). A nuclear overhauser effect is due to dipole-dipole interactions between the magnetic moments of the pair of nuclei. Unlike J-coupling, this interaction is not mediated through bonds and hence it may be possible to observe the nuclear overhauser effect between pairs of nuclei separated by many bonds provided that they are in spatial proximity. The strength of the observable Nuclear overhauser effect for molecules in solution is proportional to the inverse of the sixth power of the distance between the two nuclei due to averaging caused by rotational motion. Both the magnitude as well as the sign of the nuclear overhauser effect depend on the rotational frequencies of the pair of nuclei with respect to the applied magnetic field.

The Noe enhancement is quantitatively defined as

In the steady state, when the resonance frequency of spin I is irradiated and the intensity of spin S is monitored[2],


This indicates that considerable enhancement in the intensity of the S signal can be obtained by irradiation at the frequency of the I spin, provided that , because when . However, when , and negative Noe enhancements are obtained. The sign of changes from positive to negative when is close to one and under such conditions the Noe effect may not be observable. This happens for rigid molecules with relative molecular mass about 500 at room temperature and other molecules with similar correlation times e.g. many hexapeptides.

References

  1. Overhauser, A. W. (1953). Phys. Rev. 92, 411
  2. Quantum description of high resolution NMR in liquids. M.Goldman. Oxford.