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Laser synthesis of Ni_xZn_yO/reduced graphene oxide/carbon nanotube electrodes for energy storage applications

机译:激光合成Ni_xZn_yo / X型氧化石墨烯/碳纳米管电极的能量存储应用

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Porous multicomponent surface layers consisting of bimetallic oxide nanoparticles, carbon nanomaterials reduced graphene oxide (GO) and multiwall carbon nanotubes (MWCNTs) were prepared by reactive inverse matrix assisted pulsed laser evaporation. The layers were tested as electrodes for supercapacitor devices. Bimetallic oxide nanoparticles were grown through the mixing of simple inorganic oxides and organic compounds in distilled water. A frequency quadrupled Nd:YAG laser was used for the irradiation of the target dispersions consisting of GO platelets, MWCNTs, NiO, and Zn acetate. Besides oxide nanoparticles synthesis, which were present both on the surface of GO platelets and MWCTs and were also encapsulated within the MWCNTs walls, the GO platelets used for the preparation of the target dispersion were reduced under the effect of the laser pulses. An enhancement of the electrochemical performances of the nanohybrid electrodes were obtained as a results of the formation of bimetallic oxide nanoparticles. The electrodes exhibit fast charge-discharge cycling rate and improved storage capacity as compared to compound layer counterparts containing carbon nanomaterials, reduced graphene oxide, carbon nanotubes and simple binary transition metal oxide nanoparticles, 40F/cm3 volumetric capacitance at 10 mV/s scan rate, 1.5 mW/cm3 energy density and 12 W/cm3 power density at 4 mA/cm3 current density.
机译:通过反应性逆矩阵辅助脉冲激光蒸发制备由双金属氧化物纳米颗粒组成的多孔多组分表面层,碳纳米材料的石墨烯(GO)和多壁碳纳米管(MWCNT)制备。将这些层作为超级电容器装置的电极进行测试。通过在蒸馏水中混合简单无机氧化物和有机化合物的混合生长双金属氧化物纳米颗粒。使用频率四水Nd:YAG激光器用于照射由Go血小板,MWCNT,NIO和乙酸乙酸盐的靶分散体。除了氧化物纳米颗粒合成之外,在血小板和MWCT的表面上存在并且也封装在MWCNT壁内,用于制备目标分散体的逐片在激光脉冲的效果下减少。获得纳米冬杂电化电极的电化学性能的提高,作为Bimetallic氧化物纳米颗粒的形成结果。与含有碳纳米材料的复合层对应物相比,电极表现出快速充放电循环速率和提高的储存能力,并在10mV / s的扫描速率下,40f / cm3容量电容,40f / cm3容量电容。 1.5 MW / cm3能量密度和12个W / cm3功率密度,在4 mA / cm3电流密度下。

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