Electron-driven spin diffusion supports crossing the diffusion barrier in MAS DNP

Autor(en): Wittmann, Johannes J.
Eckardt, Michael 
Harneit, Wolfgang 
Corzilius, Bjoern
Stichwörter: ATOMIC NITROGEN; C-60; Chemistry; Chemistry, Physical; CRYSTAL-STRUCTURE; DYNAMIC NUCLEAR-POLARIZATION; N-AT-C-60; PARAMAGNETIC-RESONANCE; Physics; Physics, Atomic, Molecular & Chemical; POLARIZING AGENTS; ROTATING SOLIDS; SOLID-STATE; THEORETICAL ASPECTS
Erscheinungsdatum: 2018
Herausgeber: ROYAL SOC CHEMISTRY
Journal: PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volumen: 20
Ausgabe: 16
Startseite: 11418
Seitenende: 11429
Zusammenfassung: 
Dynamic nuclear polarization (DNP) can be applied to enhance the sensitivity of solid-state NMR experiments by several orders of magnitude due to microwave-driven transfer of spin polarization from unpaired electrons to nuclei. While the underlying quantum mechanical aspects are sufficiently well understood on a microscopic level, the exact description of the large-scale spin dynamics, usually involving hundreds to thousands of nuclear spins per electron, is still lacking consensus. Generally, it is assumed that nuclear hyperpolarization can only be observed on nuclei which do not experience strong influence of the unpaired electrons and thus being significantly removed from the paramagnetic polarizing agents. At the same time, sufficiently strong hyperfine interaction is required for DNP transfer. Therefore, efficient nuclear spin diffusion from the strongly-interacting nuclei to the NMR-observable bulk is considered to be essential for efficient nuclear hyperpolarization. Based on experimental results obtained on the endohedral fullerene N@C-60 as a polarizing agent sparsely diluted in C-60, we discuss the effect of the spin-diffusion barrier. We introduce electron-driven spin diffusion (EDSD) as a novel mechanism for nuclear polarization transfer in the proximity of an electron spin which is particularly relevant under magic-angle spinning (MAS) DNP conditions.
ISSN: 14639076
DOI: 10.1039/c8cp00265g

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