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Time-optimized pulsed dynamic nuclear polarization
Author(s) -
Kong Ooi Tan,
Chen Yang,
Ralph T. Weber,
Guinevere Mathies,
Robert G. Griffin
Publication year - 2019
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aav6909
Subject(s) - microwave , zeeman effect , electron , polarization (electrochemistry) , physics , larmor precession , hamiltonian (control theory) , nuclear magnetic resonance , atomic physics , materials science , magnetic field , chemistry , quantum mechanics , mathematics , mathematical optimization
Pulsed dynamic nuclear polarization (DNP) techniques can accomplish electron-nuclear polarization transfer efficiently with an enhancement factor that is independent of the Zeeman field. However, they often require large Rabi frequencies and, therefore, high-power microwave irradiation. Here, we propose a new low-power DNP sequence for static samples that is composed of a train of microwave pulses of length τ spaced with delays . A particularly robust DNP condition using a period τ = τ + set to ~1.25 times the Larmor period τ is investigated which is a time-optimized pulsed DNP sequence (TOP-DNP). At 0.35 T, we obtained an enhancement of ~200 using TOP-DNP compared to ~172 with nuclear spin orientation via electron spin locking (NOVEL), a commonly used pulsed DNP sequence, while using only ~7% microwave power required for NOVEL. Experimental data and simulations at higher fields suggest a field-independent enhancement factor, as predicted by the effective Hamiltonian.

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