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固态效应动力学核极化和极化途径。

Solid effect dynamic nuclear polarization and polarization pathways.

机构信息

Department of Chemistry and Francis Bitter Magnet Laboratory, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

出版信息

J Chem Phys. 2012 Jan 7;136(1):015101. doi: 10.1063/1.3670019.

Abstract

Using dynamic nuclear polarization (DNP)/nuclear magnetic resonance instrumentation that utilizes a microwave cavity and a balanced rf circuit, we observe a solid effect DNP enhancement of 94 at 5 T and 80 K using trityl radical as the polarizing agent. Because the buildup rate of the solid effect increases with microwave field strength, we obtain a sensitivity gain of 128. The data suggest that higher microwave field strengths would lead to further improvements in sensitivity. In addition, the observation of microwave field dependent enhancements permits us to draw conclusions about the path that polarization takes during the DNP process. By measuring the time constant for the polarization buildup and enhancement as a function of the microwave field strength, we are able to compare models of polarization transfer, and show that the major contribution to the bulk polarization arises via direct transfer from electrons, rather than transferring first to nearby nuclei and then transferring to bulk nuclei in a slow diffusion step. In addition, the model predicts that nuclei near the electron receive polarization that can relax, decrease the electron polarization, and attenuate the DNP enhancement. The magnitude of this effect depends on the number of near nuclei participating in the polarization transfer, hence the size of the diffusion barrier, their T(1), and the transfer rate. Approaches to optimizing the DNP enhancement are discussed.

摘要

使用利用微波腔和平衡射频电路的动态核极化 (DNP)/核磁共振仪器,我们使用三苯基自由基作为极化剂,在 5 T 和 80 K 下观察到固体效应 DNP 增强 94。由于固体效应的建立速率随微波场强度的增加而增加,因此我们获得了 128 的灵敏度增益。数据表明,更高的微波场强度将导致灵敏度的进一步提高。此外,观察微波场依赖的增强使我们能够得出关于极化在 DNP 过程中所走路径的结论。通过测量极化建立和增强随微波场强度的时间常数,我们能够比较极化转移的模型,并表明大部分体极化是通过电子的直接转移产生的,而不是先转移到附近的核,然后在缓慢的扩散步骤中转移到体核。此外,该模型预测电子附近的核接收可以弛豫的极化,这会降低电子极化并减弱 DNP 增强。该效应的大小取决于参与极化转移的近核的数量,因此取决于扩散势垒的大小、它们的 T(1)和转移速率。讨论了优化 DNP 增强的方法。

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