Alexander B. Barnes, Evgeny Markhasin
We describe the design and implementation of the instrumentation required to perform DNP-NMR at higher field strengths than previously demonstrated, and report the first magic-angle spinning (MAS) DNP-NMR experiments performed at 1H/e/C0 frequencies of 700 MHz/460 GHz. The extension of DNP-NMR to 16.4 T has required the development of probe technology, cryogenics, gyrotrons, and microwave transmission lines. The probe contains a 460 GHz microwave channel, with corrugated waveguide, tapers, and miter-bends that couple microwave power to the sample. Experimental efficiency is increased by a cryogenic exchange system for 3.2 mm rotors within the 89 mm bore. Sample temperatures685 K, resulting in improved DNP enhancements, are achieved by a novel heat exchanger design, stainless steel and brass vacuum jacketed transfer lines, and a bronze probe dewar. In addition, the heat exchanger is preceded with a nitrogen drying and generation system in series with a pre-cooling refrigerator. This reduces liquid nitrogen usage from >700 l per day to <200 l per day and allows for continuous (>7 days) cryogenic spinning without detrimental frost or ice formation. Initial enhancements, e = /C040, and a strong microwave power dependence suggests the possibility for considerable improvement. Finally, two-dimensional spectra of a model system demonstrate that the higher field provides excellent resolu-tion, even in a glassy, cryoprotecting matrix.
@article{48d4f299-22a5-4aab-8558-5b660c394be9,
title={Dynamic nuclear polarization at 700MHz 4},
author={Alexander B. Barnes and Evgeny Markhasin},
year={2026},
language={en}
}TY - JOUR TI - Dynamic nuclear polarization at 700MHz 4 AU - Alexander B. Barnes AU - Evgeny Markhasin PY - 2026 LA - en ER -
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