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用于储能应用的氧化石墨烯片与包裹有垂直排列的聚(苯胺 - 共 - 三聚氰胺)纳米纤维阵列的氧化钴协同效应评估。

Evaluation of the Synergistic Effect of Graphene Oxide Sheets and CoO Wrapped with Vertically Aligned Arrays of Poly (Aniline-Co-Melamine) Nanofibers for Energy Storage Applications.

作者信息

Ahmed Ishtiaq, Wageh S, Rehman Wajid, Iqbal Javed, Mir Sadullah, Al-Ghamdi Ahmed, Khalid Mohammad, Numan Arshid

机构信息

Department of Chemistry, Hazara University Mansehra, Mansehra 21300, Pakistan.

Department of Physics, Faculty of Science, King Abdulaziz University, Jeddah 21589, Saudi Arabia.

出版信息

Polymers (Basel). 2022 Jun 30;14(13):2685. doi: 10.3390/polym14132685.

Abstract

In the present study, CoO and graphene oxide (GO) are used as reinforcement materials in a copolymer matrix of poly(aniline-co-melamine) to synthesize ternary composites. The nanocomposite was prepared by oxidative in-situ polymerization and used as an electrode material for energy storage. The SEM images revealed the vertically aligned arrays of copolymer nanofibers, which entirely wrapped the GO sheets and CoO nanoparticles. The EDX and mapping analysis confirmed the elemental composition and uniform distribution in the composite. The XRD patterns unveiled composites' phase purity and crystallinity through characteristic peaks appearing at their respective 2θ values in the XRD spectrum. The FTIR spectrums endorse the successful synthesis of composites, whereas TGA analysis revealed the higher thermal stability of composites. The cyclic voltammetry, galvanostatic charge-discharge, and electrochemical impedance spectroscopy are employed to elucidate the electrochemical features of electrodes. The ternary composite PMCoG-2 displayed the highest specific capacity of 134.36 C/g with 6 phr of GO, whereas PMCoG-1 and PMCoG-3 exhibited the specific capacities of 100.63 and 118.4 C/g having 3 phr and 12 phr GO at a scan rate of 0.003 V/s, respectively. The best electrochemical performance of PMCoG-2 is credited to the synergistic effect of constituents of the composite material.

摘要

在本研究中,氧化钴(CoO)和氧化石墨烯(GO)被用作聚(苯胺 - 共 - 三聚氰胺)共聚物基体中的增强材料,以合成三元复合材料。该纳米复合材料通过氧化原位聚合制备,并用作储能电极材料。扫描电子显微镜(SEM)图像显示了共聚物纳米纤维的垂直排列阵列,其完全包裹了氧化石墨烯片和氧化钴纳米颗粒。能量散射X射线谱(EDX)和映射分析证实了复合材料中的元素组成和均匀分布。X射线衍射(XRD)图谱通过XRD谱中各自2θ值处出现的特征峰揭示了复合材料的相纯度和结晶度。傅里叶变换红外光谱(FTIR)证实了复合材料的成功合成,而热重分析(TGA)表明复合材料具有更高的热稳定性。采用循环伏安法、恒电流充放电和电化学阻抗谱来阐明电极的电化学特性。三元复合材料PMCoG - 2在氧化石墨烯含量为6 phr时显示出最高比容量134.36 C/g,而PMCoG - 1和PMCoG - 3在扫描速率为0.003 V/s时,氧化石墨烯含量分别为3 phr和12 phr时,比容量分别为100.63和118.4 C/g。PMCoG - 2的最佳电化学性能归因于复合材料各组分的协同效应。

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