Zhang Chengwei, Zhitomirsky Igor
Department of Materials Science and Engineering, McMaster University, Hamilton, ON L8S 4L7, Canada.
Nanomaterials (Basel). 2023 May 21;13(10):1693. doi: 10.3390/nano13101693.
This investigation is motivated by interest in nanostructured FeOOH anodes for aqueous asymmetric supercapacitors operating in NaSO electrolyte. The research goal is the fabrication of anodes with high active mass loading of 40 mg cm, high capacitance and low resistance. The influence of high-energy ball milling (HEBM), capping agents and alkalizer on the nanostructure and capacitive properties is investigated. HEBM promotes the crystallization of FeOOH, which results in capacitance reduction. Capping agents from the catechol family, such as tetrahydroxy-1,4-benzoquinone (THB) and gallocyanine (GC), facilitate the fabrication of FeOOH nanoparticles, eliminate the formation of micron size particles and allow the fabrication of anodes with enhanced capacitance. The analysis of testing results provided insight into the influence of the chemical structure of the capping agents on nanoparticle synthesis and dispersion. The feasibility of a conceptually new strategy for the synthesis of FeOOH nanoparticles is demonstrated, which is based on the use of polyethylenimine as an organic alkalizer-dispersant. The capacitances of materials prepared using different nanotechnology strategies are compared. The highest capacitance of 6.54 F cm is obtained using GC as a capping agent. The obtained electrodes are promising for applications as anodes for asymmetric supercapacitors.
本研究旨在探索用于在NaSO电解质中运行的水系不对称超级电容器的纳米结构FeOOH阳极。研究目标是制备具有40 mg cm高活性质量负载、高电容和低电阻的阳极。研究了高能球磨(HEBM)、封端剂和碱化剂对纳米结构和电容性能的影响。高能球磨促进了FeOOH的结晶,导致电容降低。儿茶酚家族的封端剂,如四羟基-1,4-苯醌(THB)和没食子蓝(GC),有助于制备FeOOH纳米颗粒,消除微米级颗粒的形成,并允许制备具有增强电容的阳极。对测试结果的分析深入了解了封端剂化学结构对纳米颗粒合成和分散的影响。展示了一种基于使用聚乙烯亚胺作为有机碱化剂-分散剂的概念上新的FeOOH纳米颗粒合成策略的可行性。比较了使用不同纳米技术策略制备的材料的电容。使用GC作为封端剂获得了6.54 F cm的最高电容。所获得的电极有望用作不对称超级电容器的阳极。