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首页> 外文期刊>The Journal of Chemical Physics >Level crossing analysis of chemically induced dynamic nuclear polarization: Towards a common description of liquid-state and solid-state cases
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Level crossing analysis of chemically induced dynamic nuclear polarization: Towards a common description of liquid-state and solid-state cases

机译:化学诱导动态核极化的能级穿越分析:对液态和固态情况的共同描述

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Chemically Induced Dynamic Nuclear Polarization (CIDNP) is an efficient method of creating non-equilibrium polarization of nuclear spins by using chemical reactions, which have radical pairs as intermediates. The CIDNP effect originates from (i) electron spin-selective recombination of radical pairs and (ii) the dependence of the inter-system crossing rate in radical pairs on the state of magnetic nuclei. The CIDNP effect can be investigated by using Nuclear Magnetic Resonance (NMR) methods. The gain from CIDNP is then two-fold: it allows one to obtain considerable amplification of NMR signals; in addition, it provides a very useful tool for investigating elusive radicals and radical pairs. While the mechanisms of the CIDNP effect in liquids are well established and understood, detailed analysis of solid-state CIDNP mechanisms still remains challenging; likewise a common theoretical frame for the description of CIDNP in both solids and liquids is missing. Difficulties in understanding the spin dynamics that lead to the CIDNP effect in the solid-state case are caused by the anisotropy of spin interactions, which increase the complexity of spin evolution. In this work, we propose to analyze CIDNP in terms of level crossing phenomena, namely, to attribute features in the CIDNP magnetic field dependence to Level Crossings (LCs) and Level Anti-Crossings (LACs) in a radical pair. This approach allows one to describe liquid-state CIDNP; the same holds for the solid-state case where anisotropic interactions play a significant role in CIDNP formation. In solids, features arise predominantly from LACs, since in most cases anisotropic couplings result in perturbations, which turn LCs into LACs. We have interpreted the CIDNP mechanisms in terms of the LC/LAC concept. This consideration allows one to find analytical expressions for a wide magnetic field range, where several different mechanisms are operative; furthermore, the LAC description gives a way to determine CIDNP sign rules. Thus, LCs/LACs provide a consistent description of CIDNP in both liquids and solids with the prospect of exploiting it for the analysis of short-lived radicals and for optimizing the polarization level. (C) 2016 AIP Publishing LLC.
机译:化学诱导动态核极化(CIDNP)是一种通过使用具有自由基对作为中间体的化学反应来产生核自旋的非平衡极化的有效方法。 CIDNP效应源于(i)自由基对的电子自旋选择重组,以及(ii)自由基对中的系统间交叉速率对磁核状态的依赖性。可以使用核磁共振(NMR)方法研究CIDNP效应。那么,来自CIDNP的增益是两倍的:它可以使NMR信号获得相当大的放大;此外,它为研究难以理解的部首和部首对提供了非常有用的工具。尽管液体中CIDNP效应的机理已得到很好的理解,但对固态CIDNP机理的详细分析仍具有挑战性。同样,缺少描述固体和液体中CIDNP的通用理论框架。在固态情况下,难以理解导致CIDNP效应的自旋动力学是由自旋相互作用的各向异性引起的,这增加了自旋演化的复杂性。在这项工作中,我们建议从水平交叉现象的角度分析CIDNP,即将CIDNP磁场相关性的特征归因于自由基对中的水平交叉(LC)和水平反交叉(LAC)。这种方法可以描述液态CIDNP。对于各向异性相互作用在CIDNP形成中起重要作用的固态情况也是如此。在固体中,特征主要来自LAC,因为在大多数情况下,各向异性偶合会引起扰动,从而将LC转变为LAC。我们已经根据LC / LAC概念解释了CIDNP机制。这一考虑因素使人们可以找到适用于多种不同机理的宽磁场范围的解析表达式。此外,LAC描述提供了一种确定CIDNP符号规则的方法。因此,LCs / LACs在液体和固体中都提供了对CIDNP的一致描述,并有望将其用于分析短寿命自由基和优化极化水平。 (C)2016 AIP出版有限责任公司。

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