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具有功能性邻苯二酚基团的分散剂分子用于超级电容器的制造。

Dispersant Molecules with Functional Catechol Groups for Supercapacitor Fabrication.

机构信息

Department of Materials Science and Engineering, McMaster University, Hamilton, ON L8S4L7, Canada.

出版信息

Molecules. 2021 Mar 19;26(6):1709. doi: 10.3390/molecules26061709.

Abstract

Cathodes for supercapacitors with enhanced capacitive performance are prepared using MnO as a charge storage material and carbon nanotubes (CNT) as conductive additives. The enhanced capacitive properties are linked to the beneficial effects of catecholate molecules, such as chlorogenic acid and 3,4,5-trihydroxybenzamide, which are used as co-dispersants for MnO and CNT. The dispersant interactions with MnO and CNT are discussed in relation to the chemical structures of the dispersant molecules and their biomimetic adsorption mechanisms. The dispersant adsorption is a key factor for efficient co-dispersion in ethanol, which facilitated enhanced mixing of the nanostructured components and allowed for improved utilization of charge storage properties of the electrode materials with high active mass of 40 mg cm. Structural peculiarities of the dispersant molecules are discussed, which facilitate dispersion and charging. Capacitive properties are analyzed using cyclic voltammetry, chronopotentiometry and impedance spectroscopy. A capacitance of 6.5 F cm is achieved at a low electrical resistance. The advanced capacitive properties of the electrodes are linked to the microstructures of the electrodes prepared in the presence of the dispersants.

摘要

采用 MnO 作为电荷存储材料和碳纳米管(CNT)作为导电添加剂,制备了具有增强电容性能的超级电容器阴极。电容性能的增强与儿茶酸盐分子(如绿原酸和 3,4,5-三羟基苯甲酰胺)的有益影响有关,这些分子被用作 MnO 和 CNT 的共分散剂。讨论了分散剂与 MnO 和 CNT 的相互作用与分散剂分子的化学结构及其仿生吸附机制之间的关系。分散剂的吸附是在乙醇中实现有效共分散的关键因素,这促进了纳米结构成分的高效混合,并允许利用具有 40mg cm 高活性质量的电极材料的电荷存储特性得到改善。讨论了分散剂分子的结构特点,这些特点有利于分散和充电。通过循环伏安法、恒电流计时法和阻抗谱分析了电容性能。在低电阻下实现了 6.5F cm 的电容。在存在分散剂的情况下制备的电极的先进电容性能与电极的微观结构有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9889/8003128/2a22968228b8/molecules-26-01709-g001.jpg

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