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固态动态核极化的理论方面——交叉效应。

Theoretical aspects of Dynamic Nuclear Polarization in the solid state - the cross effect.

机构信息

Department of Chemical Physics, Weizmann Institute of Science, Rehovot, Israel.

出版信息

J Magn Reson. 2012 Jan;214(1):29-41. doi: 10.1016/j.jmr.2011.09.047. Epub 2011 Oct 5.

DOI:10.1016/j.jmr.2011.09.047
PMID:22119645
Abstract

In recent years Dynamic Nuclear Polarization (DNP) signal enhancement techniques have become an important and integral part of modern NMR and MRI spectroscopy. The DNP mechanisms transferring polarization from unpaired electrons to the nuclei in the sample is accomplished by microwave (MW) irradiation. For solid samples a distinction is made between three main enhancement processes: Solid Effect (SE), Cross Effect (CE) and Thermal Mixing (TM) DNP. In a recent study we revisited the solid state SE-DNP mechanism at high magnetic fields, using a spin density operator description involving spin relaxation, for the case of an isolated electron spin interacting with neighboring nuclei. In this publication we extend this study by considering the hyper-polarization of nuclei in systems containing two interacting electrons. In these spin systems both processes SE-DNP and CE-DNP are simultaneously active. As previously, a quantum description taking into account spin relaxation is used to calculate the dynamics of spin systems consisting of interacting electron pairs coupled to (core) nuclei. Numerical simulations are used to demonstrate the dependence of the SE- and CE-DNP enhancements on the MW irradiation power and frequency, on electron, nuclear and cross relaxation mechanisms and on the spin interactions. The influence of the presence of many nuclei on the hyper-polarization of an individual core nucleus is examined, showing the similarities between the two DNP processes. These studies also indicate the advantages of the CE- over the SE-DNP processes, both driving the polarization of the bulk nuclei, via the nuclear dipole-dipole interactions.

摘要

近年来,动态核极化(DNP)信号增强技术已成为现代 NMR 和 MRI 光谱学的重要组成部分。通过微波(MW)辐照,将极化从不成对电子转移到样品中的核的 DNP 机制得以实现。对于固态样品,主要有三种增强过程:固态效应(SE)、交叉效应(CE)和热混合(TM)DNP。在最近的一项研究中,我们使用涉及自旋弛豫的自旋密度算子描述,在高磁场下重新研究了固态 SE-DNP 机制,针对与相邻核相互作用的孤立电子自旋的情况。在本出版物中,我们通过考虑包含两个相互作用电子的系统中的核超极化来扩展这一研究。在这些自旋系统中,SE-DNP 和 CE-DNP 这两个过程同时起作用。与之前一样,采用考虑自旋弛豫的量子描述来计算由相互作用的电子对与(核)核耦合组成的自旋系统的动力学。数值模拟用于演示 SE-和 CE-DNP 增强对 MW 辐照功率和频率、电子、核和交叉弛豫机制以及自旋相互作用的依赖性。还研究了许多核对单个核极化的超极化的影响,显示出这两个 DNP 过程之间的相似性。这些研究还表明,CE-DNP 过程比 SE-DNP 过程具有优势,两者都通过核偶极-偶极相互作用驱动体核的极化。

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