Publication | Closed Access
Theory of heteronuclear decoupling in solid-state nuclear magnetic resonance using multipole-multimode Floquet theory
23
Citations
60
References
2005
Year
EngineeringSpin SystemsMagnetic ResonanceFormal TheorySpin DynamicSpin PhenomenonMagnetismCross TermsElectron Paramagnetic ResonanceSpin DynamicsBiophysicsPhysicsMultipole-multimode Floquet TheoryHeteronuclear DecouplingQuantum MagnetismMagnetic Resonance SpectroscopyNatural SciencesResonanceCondensed Matter PhysicsDynamic Nuclear Polarization
A formal theory for heteronuclear decoupling in solid-state magic angle spinning (MAS) nuclear magnetic resonance experiments is presented as a first application of multipole-multimode Floquet theory. The method permits a straightforward construction of the multispin basis and describes the spin dynamics via effective Floquet Hamiltonians obtained using the van Vleck transformation method in the Floquet-Liouville space. As a test case, we consider a model three-spin system (I2S) under asynchronous time modulations (both MAS and rf irradiation) and derive effective Hamiltonians for describing the spin dynamics in the Floquet-Liouville space during heteronuclear decoupling. Furthermore, we describe and evaluate the origin of cross terms between the various anisotropic interactions and illustrate their exact contributions to the spin dynamics. The theory presented herein should be applicable to the design and understanding of pulse sequences for heteronuclear and homonuclear recoupling and decoupling.
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