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Adsorption studies of divalent, dinuclear coordination complexes as molecular spacers on SWCNTs

机译:二价双核配位化合物作为分子间隔基在SWCNT上的吸附研究

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摘要

In order to enhance the electrical energy storage capabilities of nanostructured carbon materials, interparticle spacer strategies are needed to maintain ion-accessible surface area between the nanoparticles. This paper presents a comparison between different classes of divalent, dinuclear coordination complexes which both show strong adsorption to SWCNTs and have molecular spacer properties that maintain electrochemical activity. We find that a novel, dinuclear zinc hydrazone complex binds as an ion-pair at very high loading while not inducing significant aggregation as compared to our previously studies of dinuclear ruthenium complexes. These conclusions are supported by conductivity and dispersion stability data. Moreover, since zinc is an earth abundant metal, these complexes can be used as components in sustainable energy storage materials. Binding kinetics and binding equilibrium data are presented. Modeling of the adsorption isotherm is best fit with the BET model. Kinetics data support an independent binding model. Preliminary capacitance and membrane resistance data are consistent with the complexes acting as molecular spacers between the SWCNTs in a condensed thin film.
机译:为了增强纳米结构碳材料的电能存储能力,需要粒子间间隔物策略来维持纳米粒子之间的离子可及的表面积。本文介绍了不同类别的二价,双核配位化合物之间的比较,它们既显示出对SWCNT的强吸附性,又具有维持电化学活性的分子间隔物性质。我们发现,与我们先前对双核钌配合物的研究相比,一种新型的双核hydr锌配合物在非常高的负载量下结合成离子对,而不会引起明显的聚集。这些结论得到电导率和分散稳定性数据的支持。此外,由于锌是富含地球的金属,因此这些络合物可用作可持续储能材料中的组分。给出了结合动力学和结合平衡数据。吸附等温线的建模最适合BET模型。动力学数据支持独立的绑定模型。初步的电容和膜电阻数据与在缩合薄膜中充当SWCNT之间分子间隔物的配合物一致。

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