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Colloidal methods for the fabrication of carbon nanotube-manganese dioxide and carbon nanotube-polypyrrole composites using bile acids

机译:使用胆汁酸制备碳纳米管-二氧化锰和碳纳米管-聚吡咯复合材料的胶体方法

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Nature inspired strategies have been developed for the colloidal processing of advanced composites for supercapacitor applications. New approach was based on the use of commercially available bile acid salts, such as sodium cholate (ChNa) and taurocholic acid sodium salt (TChNa). It was demonstrated that cholic acid (ChH) films can be obtained by electrophoretic deposition (EPD) from ChNa solutions. The analysis of deposition yield, quartz crystal microbalance and cyclic voltammetry data provided an insight into the anodic deposition mechanism. The outstanding suspension stability of multiwalled carbon nanotubes (MWCNT), achieved using bile acids as anionic dispersants, allowed the fabrication of MWCNT films by EPD. The use of ChNa for EPD offered advantages of binding and film forming properties of this material. Composite MnO2-MWCNT films, prepared using ChNa as a dispersant and film forming agent for EPD, showed promising capacitive behavior. In another colloidal strategy, TChNa was used as a dispersant for MWCNT for the fabrication of polypyrrole (PPy) coated MWCNT. The use of PPy coated MWCNT allowed the fabrication of electrodes with high active mass loading, high capacitance and excellent capacitance retention at high charge-discharge rates. (C) 2015 Elsevier Inc. All rights reserved.
机译:已经开发出受自然启发的策略,用于超级电容器应用的高级复合材料的胶体加工。新方法是基于使用市售的胆汁酸盐,例如胆酸钠(ChNa)和牛磺胆酸钠(TChNa)。已证明可以通过电泳沉积(EPD)从ChNa溶液中获得胆酸(ChH)膜。沉积产率,石英晶体微量天平和循环伏安数据的分析提供了对阳极沉积机理的了解。使用胆汁酸作为阴离子分散剂实现的多壁碳纳米管(MWCNT)出色的悬浮稳定性,使得EPD能够制造MWCNT薄膜。将ChNa用于EPD可提供这种材料具有粘合和成膜特性的优点。使用ChNa作为EPD的分散剂和成膜剂制备的MnO2-MWCNT复合薄膜表现出良好的电容性能。在另一种胶体策略中,将TChNa用作MWCNT的分散剂,用于制造聚吡咯(PPy)涂覆的MWCNT。使用PPy涂层的MWCNT可以制造出具有高活性质量负载,高电容和在高充放电速率下极好的电容保持率的电极。 (C)2015 Elsevier Inc.保留所有权利。

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