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通过将匹配和场模拟与实验相结合,对电化学原位核磁共振电池进行系统设计的工作流程。

Workflow for systematic design of electrochemical in operando NMR cells by matching and field simulations with experiments.

作者信息

Schatz Michael, Streun Matthias, Jovanovic Sven, Eichel Rüdiger-A, Granwehr Josef

机构信息

Institute of Energy Technologies, Fundamental Electrochemistry (IET-1), Forschungszentrum Jülich, Jülich, Germany.

Institute of Technical and Macromolecular Chemistry, RWTH Aachen University, Aachen, Germany.

出版信息

Magn Reson (Gott). 2024 Nov 20;5(2):167-180. doi: 10.5194/mr-5-167-2024. eCollection 2024.

Abstract

Combining electrochemistry (EC) and nuclear magnetic resonance (NMR) techniques has evolved from a challenging concept to an adaptable and versatile method for battery and electrolysis research. Continuous advancements in NMR hardware have fostered improved homogeneity of the static magnetic field, , and the radio frequency field, , yet fundamental challenges caused by introducing essential conductive components into the NMR sensitive volume remain. Cell designs in EC-NMR have largely been improved empirically, at times supported by magnetic field simulations. To propel systematic improvements of cell concepts, a workflow for a qualitative and semi-quantitative description of both and distortions is provided in this study. Three-dimensional finite element method (FEM) simulations of both and fields were employed to investigate cell structures with electrodes oriented perpendicular to , which allow realistic EC-NMR measurements for battery and electrolysis applications. Particular attention is paid to field distributions in the immediate vicinity of electrodes, which is of prime interest for electrochemical processes. Using a cell with a small void outside the electrochemical active region, the relevance of design details and bubble formation is demonstrated. Moreover, amplifications in coin cells provide an explanation for unexpectedly high sensitivity in previous EC-NMR studies, implying the potential for selective excitation of spins close to electrode surfaces. The correlation of this amplification effect with coin geometry is described by empirical expressions. The simulations were validated experimentally utilising frequency-encoded H profile imaging and chemical shift imaging of H, C, and Na resonances of electrolyte. Finally, the theoretical and experimental results are distilled into design guidelines for EC-NMR cells.

摘要

将电化学(EC)和核磁共振(NMR)技术相结合,已从一个具有挑战性的概念发展成为一种适用于电池和电解研究的通用方法。NMR硬件的不断进步提高了静磁场和射频场的均匀性,然而,将基本导电部件引入NMR敏感体积所带来的根本挑战依然存在。EC-NMR中的电池设计在很大程度上是通过经验改进的,有时会得到磁场模拟的支持。为了推动电池概念的系统性改进,本研究提供了一种对静磁场和射频场畸变进行定性和半定量描述的工作流程。利用三维有限元方法(FEM)对静磁场和射频场进行模拟,以研究电极垂直于静磁场方向排列的电池结构,这种结构能够实现针对电池和电解应用的实际EC-NMR测量。特别关注电极附近的场分布,这对电化学过程至关重要。通过使用一个在电化学活性区域外有小空隙的电池,证明了设计细节和气泡形成的相关性。此外,硬币电池中的信号放大为先前EC-NMR研究中意外的高灵敏度提供了解释,这意味着有可能选择性地激发靠近电极表面的自旋。通过经验表达式描述了这种放大效应与硬币电池几何形状的相关性。利用频率编码的氢谱成像以及对电解质中氢、碳和钠共振的化学位移成像对模拟进行了实验验证。最后,将理论和实验结果提炼为EC-NMR电池的设计指南。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51b0/12178131/915b30a787db/mr-5-167-2024-f01.jpg

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