Laboratoire de Chimie Inorganique et Biologique, UMR-E3 (CEA/UJF) and CNRS, Institut Nanosciences et Cryogénie, CEA, 38054 Grenoble, France.
Laboratoire National des Champs Magnétiques Intenses, CNRS, F-38042 Grenoble, France.
J Magn Reson. 2014 Feb;239:91-9. doi: 10.1016/j.jmr.2013.12.005. Epub 2013 Dec 17.
Thanks to instrumental and theoretical development, notably the access to high-power and high-frequency microwave sources, high-field dynamic nuclear polarization (DNP) on solid-state NMR currently appears as a promising solution to enhance nuclear magnetization in many different types of systems. In magic-angle-spinning DNP experiments, systems of interest are usually dissolved or suspended in glass-forming matrices doped with polarizing agents and measured at low temperature (down to ∼100K). In this work, we discuss the influence of sample conditions (radical concentration, sample temperature, etc.) on DNP enhancements and various nuclear relaxation times which affect the absolute sensitivity of DNP spectra, especially in multidimensional experiments. Furthermore, DNP-enhanced solid-state NMR experiments performed at 9.4 T are complemented by high-field CW EPR measurements performed at the same magnetic field. Microwave absorption by the DNP glassy matrix is observed even below the glass transition temperature caused by softening of the glass. Shortening of electron relaxation times due to glass softening and its impact in terms of DNP sensitivity is discussed.
由于仪器和理论的发展,特别是可以获得高功率和高频微波源,固态 NMR 上的高场动态核极化(DNP)目前似乎是增强许多不同类型系统中核极化的一种很有前途的解决方案。在魔角旋转 DNP 实验中,通常将感兴趣的系统溶解或悬浮在掺杂有极化剂的玻璃形成基质中,并在低温(低至约 100K)下进行测量。在这项工作中,我们讨论了样品条件(自由基浓度、样品温度等)对 DNP 增强和各种影响 DNP 光谱绝对灵敏度的核弛豫时间的影响,特别是在多维实验中。此外,在 9.4T 下进行的 DNP 增强固态 NMR 实验补充了在相同磁场下进行的高场 CW EPR 测量。即使在玻璃软化引起的玻璃化转变温度以下,也观察到 DNP 玻璃基质的微波吸收。讨论了由于玻璃软化导致的电子弛豫时间缩短及其对 DNP 灵敏度的影响。