论文标题

纳米多孔碳中的离子液体动力学:超级电容器材料上的孔径和温度依赖性中子光谱研究

Ionic liquid dynamics in nanoporous carbon: A pore-size- and temperature-dependent neutron spectroscopy study on supercapacitor materials

论文作者

Busch, Mark, Hofmann, Tommy, Frick, Bernhard, Embs, Jan P., Dyatkin, Boris, Huber, Patrick

论文摘要

空间限制对室温离子液体1-N-丁基吡啶二吡啶的热激发随机阳离子动力学的影响光谱法。使用固定窗口扫描的电位,即扫描样品参数,同时仅观察一个特定的能量传递值,获得了在宽温度范围内的动态景观的概述。结果表明,这些数据已经提供了对分子迁移率与大量相比的分子迁移率改变的相当全面的理解。对选定温度下的全能传递光谱进行的互补,更详细的分析显示,不同时间尺度上的两个翻译扩散过程。两者都比在散装液体中慢得多,并且显示出相应的自扩散系数的减小,而纳米孔的大小降低。孔尺寸相似的纳米孔碳中分子自扩散的不同热激活能表明孔形态对分子迁移率的重要性,超出了纯粹的限制程度。尽管动态放缓,我们仍可以证明纳米限制时液态的温度范围非常延长到较低的温度,这对这种系统的潜在技术应用是有益的。

The influence of spatial confinement on the thermally excited stochastic cation dynamics of the room-temperature ionic liquid 1-N-butylpyridinium bis-((trifluoromethyl)sulfonyl)imide ([BuPy][Tf_2N]) inside porous carbide-derived carbons with various pore sizes in the sub- to a few nanometer range are investigated by quasi-elastic neutron spectroscopy. Using the potential of fixed window scans, i.e. scanning a sample parameter, while observing solely one specific energy transfer value, an overview of the dynamic landscape within a wide temperature range is obtained. It is shown that already these data provide a quite comprehensive understanding of the confinement-induced alteration of the molecular mobility in comparison to the bulk. A complementary, more detailed analysis of full energy transfer spectra at selected temperatures reveals two translational diffusive processes on different time scales. Both are considerably slower than in the bulk liquid and show a decrease of the respective self-diffusion coefficients with decreasing nanopore size. Different thermal activation energies for molecular self-diffusion in nanoporous carbons with similar pore size indicate the importance of pore morphology on the molecular mobility, beyond the pure degree of confinement. In spite of the dynamic slowing down we can show that the temperature range of the liquid state upon nanoconfinement is remarkably extended to much lower temperatures, which is beneficial for potential technical applications of such systems.

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