4.3 Article

Paramagnet induced signal quenching in MAS-DNP experiments in frozen homogeneous solutions

期刊

JOURNAL OF MAGNETIC RESONANCE
卷 240, 期 -, 页码 113-123

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jmr.2013.11.013

关键词

Dynamic nuclear polarization; Nuclear magnetic resonance; Electron paramagnetic resonance; Electron spin resonance; Polarizing agents; Paramagnetic relaxation; Magic angle spinning NMR

资金

  1. NIH [EB-002804, EB-002026]
  2. Deutsche Forschungsgemeinschaft (DFG) [CO 802/1-1]

向作者/读者索取更多资源

The effects of nuclear signal quenching induced by the presence of a paramagnetic polarizing agent are documented for conditions used in magic angle spinning (MAS)-dynamic nuclear polarization (DNP) experiments on homogeneous solutions. In particular, we present a detailed analysis of three time constants: (1) the longitudinal build-up time constant T-B for H-1; (2) the rotating frame relaxation time constant T-1p for H-1 and C-13 and (3) T-2 of C-13, the transverse relaxation time constant in the laboratory frame. These relaxation times were measured during microwave irradiation at a magnetic field of 5 T (140 GHz) as a function of the concentration of four polarizing agents: TOTAPOL, 4-amino-TEMPO, trityl (OX063), and Gd-DOTA and are compared to those obtained for a sample lacking paramagnetic doping. We also report the EPR relaxation time constants T-1s and T-2s, the DNP enhancements, epsilon, and the parameter E, defined below, which measures the sensitivity enhancement for the four polarizing agents as a function of the electron concentration. We observe substantial intensity losses (paramagnetic quenching) with all of the polarizing agents due to broadening mechanisms and cross relaxation during MAS. In particular, the monoradical trityl and biradical TOTAPOL induce similar to 40% and 50% loss of signal intensity. In contrast there is little suppression of signal intensity in static samples containing these paramagnetic species. Despite the losses due to quenching, we find that all of the polarizing agents provide substantial gains in signal intensity with DNP, and in particular that the net enhancement is optimal for biradicals that operate with the cross effect. We discuss the possibility that much of this polarization loss can be regained with the development of instrumentation and methods to perform electron decoupling. (C) 2013 Elsevier Inc. All rights reserved.

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