Observation of Electron Spin Dynamics on Hundreds-of-Microseconds Timescales in High-Field Magic Angle Spinning EPR

Abstract Dynamic nuclear polarization (DNP) efficiency critically depends on electron–nuclear polarization transfer, necessitating a thorough understanding of electron spin dynamics under DNP-relevant conditions, namely, high magnetic fields and magic angle spinning (MAS). While high-field electron paramagnetic resonance (EPR) under MAS is the only tool capable of probing these dynamics, its application has been limited by technological constraints and methodological gaps, leaving the microscopic behavior of electron spin packets under MAS largely unexplored experimentally. Here we demonstrate the first rotor-synchronized three-pulse stimulated echo MAS-EPR experiments at 6.9 T with spinning frequencies up to 37 kHz. This approach enables the characterization of electron spin dynamics on timescales of hundreds of microseconds under MAS, revealing its strong dependence on both EPR line anisotropy and MAS rate. We further validated our experimental findings with time-domain numerical simulations. This work establishes a robust methodology for investigating electron spin dynamics in MAS-DNP on the experimentally relevant timescales.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-19
DOI
https://doi.org/10.1021/acs.jpclett.6c02108
Primary Topic
Electron Spin Resonance Studies
Type
article
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article

Observation of Electron Spin Dynamics on Hundreds-of-Microseconds Timescales in High-Field Magic Angle Spinning EPR

Nurit Manukovsky, Alexander B. Fialkov, Frédéric Mentink‐Vigier, Sudipta Khamrui et al.
The Journal of Physical Chemistry Letters
Electron Spin Resonance Studies
article

Observation of Electron Spin Dynamics on Hundreds-of-Microseconds Timescales in High-Field Magic Angle Spinning EPR

Nurit Manukovsky, Alexander B. Fialkov, Frédéric Mentink‐Vigier, Sudipta Khamrui, Ilia Kaminker, Orit Nir-Arad
article en

Abstract

Abstract Dynamic nuclear polarization (DNP) efficiency critically depends on electron–nuclear polarization transfer, necessitating a thorough understanding of electron spin dynamics under DNP-relevant conditions, namely, high magnetic fields and magic angle spinning (MAS). While high-field electron paramagnetic resonance (EPR) under MAS is the only tool capable of probing these dynamics, its application has been limited by technological constraints and methodological gaps, leaving the microscopic behavior of electron spin packets under MAS largely unexplored experimentally. Here we demonstrate the first rotor-synchronized three-pulse stimulated echo MAS-EPR experiments at 6.9 T with spinning frequencies up to 37 kHz. This approach enables the characterization of electron spin dynamics on timescales of hundreds of microseconds under MAS, revealing its strong dependence on both EPR line anisotropy and MAS rate. We further validated our experimental findings with time-domain numerical simulations. This work establishes a robust methodology for investigating electron spin dynamics in MAS-DNP on the experimentally relevant timescales.

The Journal of Physical Chemistry Letters
Florida State University (US), Tel Aviv University (IL)
Openalex Percentile: Top 12%
Electron Spin Resonance Studies
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Observation of Electron Spin Dynamics on Hundreds-of-Microseconds Timescales in High-Field Magic Angle Spinning EPR — Nurit Manukovsky, Alexander B. Fialkov, et al. · The Journal of Physical Chemistry Letters (2026) | TGRS Research Map | TGRS