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Intercalated polyaniline nanosheets prepared from lyotropic liquid crystalline solutions and their capacitive performance

机译:由溶致液晶溶液制备的插层聚苯胺纳米片及其电容性能

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Intercalated polyaniline (PANI) nanosheets, supported by sodium dodecyl sulfate (SDS), have been pre-pared in one step from discotic nematic lyotropic liquid crystal (LLC) solutions. The inter-lamellar distance was observed to be dependent strongly on the stirring situation during the polymerization: an average distance of 3.4 nrn is favorable for samples with and without stirring during the, preparation, while a shorter one of 1.4 nm is preferable when the system was stirred only during the period of the addition of ammonium persulfate (APS). Interestingly, all UV-vis, XPS, TGA and elemental analysis experiments demonstrate clearly that the PANIs prepared in this way were in partially doped states, although all these reactions were carried out at non-acidic conditions. Such phenomenon can be attributed to the doping process induced by dodecyl sulfuric acid, which was produced in situ during the polymerization. Fur-thermore, all our PANIs exhibit high specific capacitance in compared with other chemically prepared systems. In particularly, superior capacitance retention propriety (as high as 8E7% in a current density of 0.4-4.0A g~(-1)) can be available for PANI prepared with stirring all the time, indicating its great potential to provide high power density. In short, our experiments indicate that the intercalated nanosheet structure at molecular scale is of great benefit in improving the supercapacitive performance'of the corresponding electrode material in supercapacitors.
机译:由盘状向列溶致液晶(LLC)溶液一步制备了由十二烷基硫酸钠(SDS)支撑的插层聚苯胺(PANI)纳米片。观察到层间距离在很大程度上取决于聚合过程中的搅拌情况:在制备过程中有或没有搅拌的样品,平均距离为3.4 nrn是有利的,而当系统仅在添加过硫酸铵(APS)期间搅拌。有趣的是,尽管所有这些反应都是在非酸性条件下进行的,但所有的UV-vis,XPS,TGA和元素分析实验都清楚地表明,以这种方式制备的PANI处于部分掺杂状态。这种现象可归因于十二烷基硫酸在聚合过程中原位产生的掺杂过程。此外,与其他化学制备的系统相比,我们所有的PANI均显示出高比电容。特别是,对于始终搅拌制得的PANI,可提供优异的电容保持特性(在0.4-4.0A g〜(-1)的电流密度下高达8E7%),表明其提供高功率密度的巨大潜力。简而言之,我们的实验表明,分子尺度上插入的纳米片结构在改善超级电容器中相应电极材料的超级电容性能方面具有巨大优势。

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