Co-reporter:Brice J. Albert, Seong Ho Pahng, Nicholas Alaniva, Erika L. Sesti, Peter W. Rand, Edward P. Saliba, Faith J. Scott, Eric J. Choi, Alexander B. Barnes
Journal of Magnetic Resonance 2017 Volume 283(Volume 283) pp:
Publication Date(Web):1 October 2017
DOI:10.1016/j.jmr.2017.08.014
•Counterflow heat exchanger design reduces nitrogen consumption to 90 L/day.•Computational fluid dynamics analysis describes heat exchanger performance.•80 K sample temperature yields DNP enhancement of 328.•Robust design and low H2O content permits extended continuous operation (>5 weeks).Cryogenic sample temperatures can enhance NMR sensitivity by extending spin relaxation times to improve dynamic nuclear polarization (DNP) and by increasing Boltzmann spin polarization. We have developed an efficient heat exchanger with a liquid nitrogen consumption rate of only 90 L per day to perform magic-angle spinning (MAS) DNP experiments below 85 K. In this heat exchanger implementation, cold exhaust gas from the NMR probe is returned to the outer portion of a counterflow coil within an intermediate cooling stage to improve cooling efficiency of the spinning and variable temperature gases. The heat exchange within the counterflow coil is calculated with computational fluid dynamics to optimize the heat transfer. Experimental results using the novel counterflow heat exchanger demonstrate MAS DNP signal enhancements of 328 ± 3 at 81 ± 2 K, and 276 ± 4 at 105 ± 2 K.Download high-res image (177KB)Download full-size image
Co-reporter:Daniel E.M. Hoff, Brice J. Albert, Edward P. Saliba, Faith J. Scott, Eric J. Choi, Michael Mardini, Alexander B. Barnes
Solid State Nuclear Magnetic Resonance 2015 Volume 72() pp:79-89
Publication Date(Web):November 2015
DOI:10.1016/j.ssnmr.2015.10.001
•Time independent microwave structure for MAS DNP at 200 GHz.•Simulations of adiabatic electron inversions for MAS DNP.•Voltage profiles for adiabatic electron inversions with tunable gyrotrons.Hyperfine decoupling and pulsed dynamic nuclear polarization (DNP) are promising techniques to improve high field DNP NMR. We explore experimental and theoretical considerations to implement them with magic angle spinning (MAS). Microwave field simulations using the high frequency structural simulator (HFSS) software suite are performed to characterize the inhomogeneous phase independent microwave field throughout a 198 GHz MAS DNP probe. Our calculations show that a microwave power input of 17 W is required to generate an average EPR nutation frequency of 0.84 MHz. We also present a detailed calculation of microwave heating from the HFSS parameters and find that 7.1% of the incident microwave power contributes to dielectric sample heating. Voltage tunable gyrotron oscillators are proposed as a class of frequency agile microwave sources to generate microwave frequency sweeps required for the frequency modulated cross effect, electron spin inversions, and hyperfine decoupling. Electron spin inversions of stable organic radicals are simulated with SPINEVOLUTION using the inhomogeneous microwave fields calculated by HFSS. We calculate an electron spin inversion efficiency of 56% at a spinning frequency of 5 kHz. Finally, we demonstrate gyrotron acceleration potentials required to generate swept microwave frequency profiles for the frequency modulated cross effect and electron spin inversions.