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MRI of chemical reactions and processes

机译:化学反应和过程的MRI

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As magnetic resonance imaging (MRI) can spatially resolve a wealth of molecular information available from nuclear magnetic resonance (NMR), it is able to non-invasively visualise the composition, properties and reactions of a broad range of spatially-heterogeneous molecular systems. Hence, MRI is increasingly finding applications in the study of chemical reactions and processes in a diverse range of environments and technologies. This article will explain the basic principles of MRI and how it can be used to visualise chemical composition and molecular properties, providing an overview of the variety of information available. Examples are drawn from the disciplines of chemistry, chemical engineering, environmental science, physics, electrochemistry and materials science. The review introduces a range of techniques used to produce image contrast, along with the chemical and molecular insight accessible through them. Methods for mapping the distribution of chemical species, using chemical shift imaging or spatially resolved spectroscopy, are reviewed, as well as methods for visualising physical state, temperature, current density, flow velocities and molecular diffusion. Strategies for imaging materials with low signal intensity, such as those containing gases or low sensitivity nuclei, using compressed sensing, parahydrogen or polarisation transfer, are discussed. Systems are presented which encapsulate the diversity of chemical and physical parameters observable by MRI, including one- and two-phase flow in porous media, chemical pattern formation, phase transformations and hydrodynamic (fingering) instabilities. Lastly, the emerging area of electrochemical MRI is discussed, with studies presented on the visualisation of electrochemical deposition and dissolution processes during corrosion and the operation of batteries, supercapacitors and fuel cells. Crown Copyright (C) 2017 Published by Elsevier B.V. All rights reserved.
机译:由于磁共振成像(MRI)可以在空间上解析从核磁共振(NMR)可获得的大量分子信息,它能够非侵入地可视化宽范围的空间 - 异质分子系统的组成,性质和反应。因此,MRI越来越多地发现了在各种环境和技术中的化学反应和过程研究中的应用。本文将解释MRI的基本原理以及如何用于可视化化学成分和分子特性,提供可用的各种信息的概述。示例是从化学,化学工程,环境科学,物理学,电化学和材料科学的学科中汲取的。审查介绍了一系列用于产生图像对比的技术,以及通过它们可访问的化学和分子洞察力。综述了使用化学移植成像或空间分辨光谱法测定化学物质分布的方法,以及用于可视化物理状态,温度,电流密度,流速和分子扩散的方法。讨论了使用压缩检测,戊二糖或极化转移的低信号强度的成像材料的策略,例如含有气体或低灵敏度核的策略。提出了系统,其封装了MRI可观察到的化学和物理参数的多样性,包括多孔介质,化学模式形成,相变和流体动力学(指令)稳定性的单相流。最后,讨论了电化学MRI的新出现区域,研究了在腐蚀和电池,超级电容器和燃料电池的操作期间的电化学沉积和溶出过程的可视化的研究。皇冠版权(c)2017由elsevier b.v出版。保留所有权利。

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