首页> 外文期刊>Electrochimica Acta >Poly(3-methylthiophene)/Vertically Aligned Multi-walled Carbon Nanotubes: Electrochemical Synthesis, Characterizations and Electrochemical Storage Properties in Ionic Liquids
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Poly(3-methylthiophene)/Vertically Aligned Multi-walled Carbon Nanotubes: Electrochemical Synthesis, Characterizations and Electrochemical Storage Properties in Ionic Liquids

机译:聚(3-甲基噻吩)/垂直对齐的多壁碳纳米管:离子液体中的电化学合成,表征和电化学存储性能。

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摘要

Poly(3-methylthiohpene) (P3MT) was electrodeposited on long thick vertically aligned carbon nanotubes mats (VACNT, length = 180 μm) using a sequenced galvanostatic synthesis in ionic liquid (ILs) media i.e. 1-ethyl-3-methyl-imidazolium-bis(trifluoromethanesulfonyl) imide (EMITFSI) and N-butyl-N-methylpyrrolidinium bis(trifluoromethanesulfonyl)imide (PYRTFSI). Pulsed galvanostatic conditions (current density, polymerization time, open circuit time) were optimized in order to ensure homogeneous polymer deposit inside the VACNT structure. The highest specific charge storage performances were obtained with current density J = 4 mA/cm~2, time of polymerization per pulse of 45s and open-circuit time of 300s. The resulting nanocomposites were electrochemically characterized by cyclic voltammetry and electrochemical impedance spectroscopy in ionic liquid in order to determine their performances (capacitance, charge/discharge time). The best capacitance (126F/g) was obtained for nanocomposite containing 83w% of P3MT. SEM-EDX experiments as well as TEM experiments bring the evidence that the P3MT is homogeneously covering the VACNTs. Furthermore, SEM pictures demonstrate that for P3MT amount >50% in mass, the nanocomposites possess a thin layer of P3MT at the bottom of the carpet. In addition these nanocomposites reveal that some VACNTs are connected together by P3MT affording self-supported and flexible properties to the nanocomposite. The ratio P3MT/CNT was optimized for electrochemical storage properties (capacitance, time of charge/discharge) and the best capacitance (126F/g) in EMITFSI at 30℃ was obtained for nanocomposite containing 83w% of P3MT. The performances obtained with optimized nanocomposites are more than 33% higher than the specific capacitance obtained with a comparative weight ratio entangled (nano-)composites.
机译:使用离子液体(ILs)介质中的序列恒电流合成法(即1-乙基-3-甲基咪唑鎓盐),将聚(3-甲基噻吩)(P3MT)电沉积在长而垂直排列的长碳纳米管毡(VACNT,长度= 180μm)上。双(三氟甲磺酰基)酰亚胺(EMITFSI)和N-丁基-N-甲基吡咯烷鎓双(三氟甲磺酰基)酰亚胺(PYRTFSI)。优化了脉冲恒电流条件(电流密度,聚合时间,开路时间),以确保VACNT结构内均匀的聚合物沉积。在电流密度J = 4 mA / cm〜2,每脉冲聚合时间为45s,开路时间为300s时,获得了最高的比电荷存储性能。通过循环伏安法和电化学阻抗谱在离子液体中对所得纳米复合材料进行电化学表征,以确定其性能(电容,充电/放电时间)。对于含有83%(重量)的P3MT的纳米复合材料,可以获得最佳的电容(126F / g)。 SEM-EDX实验和TEM实验带来了P3MT均匀覆盖VACNT的证据。此外,SEM照片表明,当P3MT的量大于50质量%时,纳米复合材料在地毯的底部具有P3MT的薄层。另外,这些纳米复合材料表明某些VACNT通过P3MT连接在一起,从而为纳米复合材料提供了自支撑和灵活的特性。对P3MT / CNT的比例进行了优化,以实现电化学存储性能(电容,充电/放电时间),并且对于含83w%P3MT的纳米复合材料,在30℃时EMITFSI中的最佳电容(126F / g)获得了。使用优化的纳米复合材料获得的性能比使用比较重量比的纠缠(纳米)复合材料获得的比电容高33%以上。

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