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Novel ternary composite consisting of multi-wallled carbon nanotubes and manganese dioxide nanorods dispersed in polyaniline matrix as supercapacitve material

机译:由多壁式碳纳米管和分散在聚苯胺基质中的多壁碳纳米管和二氧化锰纳米棒组成的新型三元复合材料作为超微覆盖物材料

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The ternary composites are expected to exhibit excellent cooperative effects while remaining the main advantageous physical-chemical properties of individual ingredients. In this work, the feasibility study on the application of the novel organic-inorganic hybrid composites consisting of multi-walled carbon nanotubes (MWCNTs), manganese dioxide (MnO2) nanorods and polyaniline as supercapacitve material was conducted. MnO2 nanorods were firstly synthesized by one-step hydrothermal method in the presence of the MWCNTs with less structural defects, then the aniline monomers were introduced into the above binary system and the ternary composites were prepared by in situ chemical polymerization under ultrasonic irradiation. It is found that the MnO2 nanorods and MWCNTs are effective dispersed onto a polyaniline matrix, and the polyaniline coating layers are formed onto the surfaces of metal oxides and carbon nanotubes. Comparative electrochemical tests reveal that the ternary composites electrode shows much better electrochemical performances, which is often difficult to achieve for manganese dioxide (MnO2) nanorods and MWCNTs composites. Such improvement can be contributed to the formation of polyaniline coating layer as a physical barrier to restrain the underlying MnO2 and MWCNTs composites from reductive-dissolution process, and better inter-particle connectivity to the metal oxide material and the carbon nanotubes in the composites.
机译:预计三元复合材料将表现出优异的合作效果,同时留下个体成分的主要有利物理化学性质。在这项工作中,对由多壁碳纳米管(MWCNT),二氧化锰(MNO2)纳米棒和聚苯胺组成的新型有机无机杂化复合材料的可行性研究进行了作为超微覆盖物材料。首先通过一步水热法在具有较少结构缺陷的MWCNTS存在下通过一步水热法合成MNO2纳米棒,然后将苯胺单体引入上述二元体系中,通过在超声辐射下原位化学聚合制备三元复合材料。发现MNO2纳米棒和MWCNTs有效地分散到聚苯胺基质上,并且聚苯胺涂层形成在金属氧化物和碳纳米管的表面上。比较电化学测试表明,三元复合材料电极显示出更好的电化学性能,这通常难以实现二氧化锰(MnO2)纳米棒和MWCNT复合材料。这种改善可以以聚苯胺涂覆层作为物理屏障来约束从还原溶解过程底层的MnO 2和多壁碳纳米管的复合材料的形成来作出了贡献,和更好的颗粒间的连接到所述金属氧化物材料和碳纳米管在复合材料中。

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