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Multinuclear in situ magnetic resonance imaging of electrochemical double-layer capacitors

机译:电化学双层电容器的多核原位磁共振成像

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摘要

The last decade has seen an intensified interest in the development and use of electrochemical double-layer capacitors, fuelled by the availability of new electrode materials. The use of nanoporous carbons, in particular, with extremely high surface areas for ion adsorption has enabled the development of working devices with significantly increased capacitances that have become viable alternatives to lithium-ion batteries in certain applications. An understanding of the charge storage mechanism and the ion dynamics inside the nanopores is only just emerging, with the most compelling evidence coming from simulation. Here we present the first in situ magnetic resonance imaging experiments of electrochemical double-layer capacitors. These experiments overcome the limitations of other techniques and give spatially resolved chemical information about the electrolyte ions in real time for a working capacitor of standard geometry. The results provide insight into the predominant capacitive processes occurring at different states of charge and discharge.
机译:在过去的十年中,由于新型电极材料的出现,人们对电化学双层电容器的开发和使用越来越感兴趣。尤其是使用具有极高表面积的纳米孔碳进行离子吸附,已使开发具有显着增加的电容量的工作装置成为了某些应用中锂离子电池的可行替代品。对纳米孔内部电荷存储机制和离子动力学的了解才刚刚起步,最引人注目的证据来自模拟。在这里,我们介绍电化学双层电容器的第一个原位磁共振成像实验。这些实验克服了其他技术的局限性,并为标准几何尺寸的工作电容器实时提供了有关电解质离子的空间分辨化学信息。结果提供了对在不同充电和放电状态下发生的主要电容过程的了解。

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