首页> 外文期刊>Journal of materials science >Electrodeposition of silver (Ag) nanoparticles on MnO_2 nanorods for fabrication of highly conductive and flexible paper electrodes for energy storage application
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Electrodeposition of silver (Ag) nanoparticles on MnO_2 nanorods for fabrication of highly conductive and flexible paper electrodes for energy storage application

机译:银(Ag)纳米粒子在MnO_2纳米棒上的电沉积,用于制造用于能量存储应用的高导电性和柔性纸电极

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Metal oxide based electrodes are attractive for energy storage applications with limited characteristics of flexibility due to inherent rigid structure. However, incorporation of flexible insulating matrix within metal oxide composites result in poor electrically conductive and energy storage characteristics. This study presents the fabrication of flexible MnO2 based composite electrodes prepared by incorporation of lignocelluloses (LC) fibers, directly collected from a self-growing plant, Monochoria Vaginalis. Furthermore electrodeposition of silver (Ag) nanoparticles was performed on LC/MnO2 in potentiostatic mode to address the electrically conductive characteristics. Morphology, structural, conductive and energy storage properties of fabricated electrodes are analyzed by scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), impedance analyzer and potentiostat, respectively. SEM images clearly indicate the deposition of Ag nanoparticles on MnO2 nanorods embedded in LC fibers whereas FTIR results confirm the bonding of the functional groups. Cyclic voltammetry measurements showed efficient kinetics of LC/MnO2 after electrodeposition of Ag nanoparticles. The effects on electrical properties associated with blending MnO2 nanorods in lignocelluloses fibers and Ag deposition on MnO2 in LC/MnO2 are explored in wide frequency range between 10Hz and 5MHz. However, deposition of Ag nanoparticles on MnO2 nanorods surfaces acts as a conductive path and reduces the associated resistance. Incorporated flexibility in rigid structure of MnO2 and further improvements in conductive and energy storage characteristics will open the possibilities to be used as electrode in modern bendable energy storage devices.
机译:基于金属氧化物的电极由于固有的刚性结构而具有有限的柔性特性,对于能量存储应用是有吸引力的。然而,在金属氧化物复合物中掺入柔性绝缘基质会导致差的导电和能量存储特性。这项研究提出了通过掺入直接从自生植物Monochoria Vaginalis收集的木质纤维素(LC)纤维制备的,基于MnO2的柔性复合电极的制造方法。此外,以恒电位模式在LC / MnO2上进行银(Ag)纳米粒子的电沉积,以解决其导电特性。分别通过扫描电子显微镜(SEM),傅立叶变换红外光谱(FTIR),阻抗分析仪和恒电位仪分析所制造电极的形态,结构,导电性和储能性能。 SEM图像清楚地表明,Ag纳米颗粒在嵌入LC纤维的MnO2纳米棒上沉积,而FTIR结果证实了官能团的结合。循环伏安法测量表明,电沉积银纳米颗粒后LC / MnO2的有效动力学。在10Hz至5MHz的宽频率范围内,研究了木质素纤维素纤维中掺混MnO2纳米棒和LC / MnO2中Ag沉积在MnO2上对电性能的影响。但是,Ag纳米颗粒在MnO2纳米棒表面上的沉积充当导电路径并降低了相关的电阻。 MnO2的刚性结构具有灵活性并进一步改善了导电和储能特性,这为在现代可弯曲储能装置中用作电极提供了可能性。

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