Investigating particle size effects on NMR spectra of ions diffusing in porous carbons through a mesoscopic model

IF 1.8 3区 化学 Q4 CHEMISTRY, PHYSICAL
Anagha Sasikumar , Céline Merlet
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Abstract

Characterizing ion adsorption and diffusion in porous carbons is essential to understand the performance of such materials in a range of key technologies such as energy storage and capacitive deionisation. Nuclear Magnetic Resonance (NMR) spectroscopy is a powerful technique to get insights in these systems thanks to its ability to distinguish between bulk and adsorbed species and to its sensitivity to dynamic phenomena. Nevertheless, a clear interpretation of the experimental results is sometimes rendered difficult by the various factors affecting NMR spectra. A mesoscopic model to predict NMR spectra of ions diffusing in carbon particles is adapted to include dynamic exchange between the intra-particle space and the bulk electrolyte surrounding the particle. A systematic study of the particle size effect on the NMR spectra for different distributions of magnetic environments in the porous carbons is conducted. The model demonstrates the importance of considering a range of magnetic environments, instead of a single chemical shift value corresponding to adsorbed species, and of including a range of exchange rates (between in and out of the particle), instead of a single timescale, to predict realistic NMR spectra. Depending on the pore size distribution of the carbon particle and the ratio between bulk and adsorbed species, both the NMR linewidth and peak positions can be largely influenced by the particle size.

Abstract Image

通过介观模型研究离子在多孔碳中扩散的粒度对核磁共振谱的影响
表征离子在多孔碳中的吸附和扩散对于理解此类材料在诸如储能和电容去离子等一系列关键技术中的性能至关重要。核磁共振(NMR)光谱学是一种强大的技术,可以深入了解这些系统,这要归功于它能够区分大块和吸附物质,以及它对动态现象的敏感性。然而,由于影响核磁共振光谱的各种因素,对实验结果的清晰解释有时变得困难。采用介观模型预测离子在碳颗粒中扩散的核磁共振谱,以适应颗粒内空间与颗粒周围的大块电解质之间的动态交换。系统地研究了多孔碳中不同磁环境分布对粒径对核磁共振谱的影响。该模型证明了考虑一系列磁环境的重要性,而不是与吸附物质相对应的单一化学位移值,以及包括一系列交换率(在粒子内外之间),而不是单一的时间尺度,以预测现实的核磁共振波谱。根据碳颗粒的孔径分布和体积与吸附物质的比值,核磁共振谱线宽和峰位都受颗粒大小的影响较大。
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来源期刊
CiteScore
5.30
自引率
9.40%
发文量
42
审稿时长
72 days
期刊介绍: The journal Solid State Nuclear Magnetic Resonance publishes original manuscripts of high scientific quality dealing with all experimental and theoretical aspects of solid state NMR. This includes advances in instrumentation, development of new experimental techniques and methodology, new theoretical insights, new data processing and simulation methods, and original applications of established or novel methods to scientific problems.
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