Magic angle spinning


In nuclear magnetic resonance, magic-angle spinning is a technique often used to perform experiments in solid-state NMR spectroscopy and, more recently, liquid Proton nuclear magnetic resonance.
By spinning the sample at the magic angle θm with respect to the direction of the magnetic field, the normally broad lines become narrower, increasing the resolution for better identification and analysis of the spectrum.
In any condensed phase, a nuclear spin experiences a great number of interactions. The main three interactions often lead to very broad and featureless lines. However, these three interactions in solids are orientation-dependent and can be averaged by MAS. The nuclear dipole-dipole interaction, between magnetic moments of nuclei averages to zero only at the magic angle, θm. The chemical shift anisotropy, a nuclear-electron interaction, averages to a non-zero value. The quadrupolar interaction is only partially averaged by MAS leaving a residual secondary quadrupolar interaction. In liquids, e.g. a solution of an organic compound, most of these interactions will average out because of the rapid time-averaged molecular motion that occurs. This orientation averaging in solution is mimicked by MAS of a solid. This causes the signal to become much narrower, giving rise to the isotropic value and spinning sidebands which occur at multiples of the spinning speed and can be used to determine the chemical shift anisotropy of the nuclei.
The physical spinning of the sample is achieved via an air turbine mechanism. These turbines come in a variety of diameters, from 0.70–15.0 mm, and are usually spun on air or nitrogen gas. The rotors are made from a number of different materials such as ceramics e.g. zirconia, silicon nitride or polymers such as poly, polyoxymethylene. The cylindrical rotors are axially symmetric about the axis of rotation. Samples are packed into the rotors and these are then sealed with a single or double end cap. These caps are made from number of different materials e.g. Kel-F, Vespel, zirconia or boron nitride depending on the application required.
Magic-angle spinning was first described in 1958 by Edward Raymond Andrew, A. Bradbury, and R. G. Eades and independently in 1959 by I. J. Lowe. The name "magic-angle spinning" was coined in 1960 by Cornelis J. Gorter at the AMPERE congress in Pisa.

Variations

High Resolution Magic-Angle Spinning (HR-MAS)

HRMAS is usually applied to solutions and gels where there is some internal molecular motion, but the dipole-dipole interactions are insufficiently averaged by such motion. Under these conditions, HRMAS can dramatically average out the dipole-dipole broadening and result in spectra similar to high resolution NMR. This permits the kind of quantitative analysis of components practiced in solution NMR, e.g.

Cross Polarization Magic-Angle Spinning (CP-MAS)

By combining cross polarization with MAS, high resolution spectra can be obtained for rigid solids.

Solution Magic Angle Spinning

Use of Magic Angle Spinning has been extended from solid-state to liquid NMR.