Reduced graphene oxide/Titanium oxide nanocomposite synthesis via microwave-assisted method and supercapacitor behaviors
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Reduced graphene oxide/Titanium oxide nanocomposite synthesis via microwave-assisted method and supercapacitor behaviors

机译:通过微波辅助方法和超级电容器行为减少石墨烯氧化物/氧化钛纳米复合物合成

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AbstractIn this paper, graphene oxide (GO) was firstly synthesized by modification of Hummers method from the literature. Secondly, reduced graphene oxide (rGO)/Titanium oxide (TiO2) nanocomposites were synthesized with different wt/wt % of GO/TiO2(1:1; 1:2; 1:5 and 1:10) by microwave-assisted method. By treating GO and GO/TiO2nanocomposites in a microwave oven, reduced graphene oxide (rGO) and rGO/TiO2materials could be obtained within power of 180?W in 10?min. The weight ratio of rGO and TiO2was used to obtain the optimum conditions for nanocomposite materials. The rGO/TiO2nanocomposite active materials were characterized by cyclic voltammetry (CV), Fourier-transform infrared – Attenuated total reflectance (FTIR-ATR), scanning electron microscopy-energy dispersion X-ray (SEM-EDX), thermogravimetry (TGA), differential thermal analyzer (DTA) and electrochemical impedance spectroscopy (EIS) analysis. Thirdly, supercapacitors were fabricated as a symmetric device with two electrode configuration. The device performances were tested by CV, galvanostatic constant current (CC), and EIS measurements. TGA analysis indicated that the thermal stability of the nanocomposites improved from rGO (40% at 892.8?°C) to nanocomposite as the initial feed ratio of [GO]o/[TiO2]o?=?1/10 as (94% at 949.3?°C) increased.The result show that the as-prepared symmetrical rGO/TiO2nanocomposite on the two-electrode system displays very high specific capacitance of 524.02?F/g at 2?mV/s for [GO]o/[TiO2]o?=?1/5 with a high energy density of E?=?50.07?Wh/kg at 2?mV/s for [GO]o/[TiO2]o?=?1/1 and high power density of P?=?58.6?kW/kg at a the scan rate 1000?mV/s for [GO]o/[TiO2]o?=?1/1. Additionally, the symmetric electrode shows good cycling stability with a retention value of 6.6% for [GO]o/[TiO2]o?=?1/1 after 1000 cycles. These good results suggest us that rGO/TiO2nanocomposite which is obtained by microwave-assisted method has a great potential as an electrode material for supercapacitor applications.The equivalent circuit model of Rs(Cdl(RctW)) was used to explain parameters of solution resistance, double layer capacitance (Cdl), charge transfer resistance (Rct), Warburg impedance (W). Theoretical and experimental values support with each other.Graphical abstractDisplay Omitted
机译:<![CDATA [ 抽象 在本文中,首先通过从文献中改变悍马方法来合成石墨烯氧化物(GO)。其次,用不同的WT / WT%的Go / TiO )纳米复合材料的纳米复合材料通过微波辅助方法,“柱”> 2> 2 (1:1; 1:2; 1:5和1:10)。通过处理GO和GO / TIO 2 纳米复合材料在微波炉中,还原氧化石墨烯(RGO)和RGO / TIO 2 材料可以在10?min的180℃的功率内获得。 RGO和TiO的重量比 2 用于获得纳米复合材料的最佳条件。 rgo / tio 2 纳米复合活性物质的特征在于循环伏安法(cv),傅里叶变换红外 - 减毒总反射率(FTIR-ATR),扫描电子显微镜 - 生物色散X射线(SEM-EDX),热重滴定法(TGA),差分热分析仪(DTA)和电化学阻抗光谱(EIS)分析。第三,超级电容器被制造为具有两个电极配置的对称装置。通过CV,Galvanostatic恒流(CC)和EIS测量来测试器件性能。 TGA分析表明,纳米复合材料的热稳定性从rgo(40%在892.8℃)中改善为纳米复合材料作为初始进给比[GO] O / [tio 2 ] o ?=?1/10 as(949.3 ?°C)增加。 结果表明,AS制备的对称RGO / TIO 纳米复合物在双电极系统上显示出非常高的比电容为2?MV / s的2?MV / s,用于[GO] O < / ce:inf> / [tio 2 ] o ?=?1/5 e的高能密度为e?=?50.07?wh / kg为2?mv / s for [go] o / [tio 2 ] O ?=?1/1和P的高功率密度P?= 58.6?KW / kg扫描速率1000?mv / s for [go] O / [TIO 2 ] O ?=?1/1。另外,对称电极显示出良好的循环稳定性,保留值为6.6%[GO] O / [TIO 2 ] O ?=?1/1在1000周期后。这些良好的结果表明,通过微波辅助方法获得的Rgo / TiO 纳米复合材料具有巨大的超级电容器应用的电极材料潜力。 R S (C DL (R CT W))用于解释溶液电阻的参数,双层电容(C DL ),电荷转移电阻(R CT ),Warburg阻抗(W)。彼此支持的理论和实验值。 图形摘要 显示省略

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