Exploring the potential of reduced graphene oxide/polyaniline (rGO@PANI) nanocomposites for high-performance supercapacitor application

聚苯胺 超级电容器 石墨烯 纳米复合材料 材料科学 氧化物 纳米技术 比表面积 电容 涂层 电极 化学工程 催化作用 复合材料 聚合物 化学 物理化学 工程类 聚合 冶金 生物化学
作者
Ahmad Umar,Faheem Ahmed,Nabi Ullah,Sajid Ali Ansari,Shahid Hussain,Ahmed A. Ibrahim,Hussam Qasem,S. Ashok Kumar,Mohsen A. M. Alhamami,Noura Almehbad,Hassan Algadi,Tubia Almas,Amal F. Selim,Sotirios Baskoutas
出处
期刊:Electrochimica Acta [Elsevier BV]
卷期号:479: 143743-143743 被引量:16
标识
DOI:10.1016/j.electacta.2023.143743
摘要

This study introduces a facile synthesis method for synthesizing reduced graphene oxide (rGO) nanosheets with surface decoration of polyaniline (PANI). The resultant rGO@PANI nanocomposite (NC) exhibit substantial potential as advanced electrode materials for high-performance supercapacitors. The strategic integration of PANI onto the rGO surface serves dual purposes, effectively mitigating agglomeration of rGO films and augmenting their utility in supercapacitor applications. The PANI coating manifests a highly porous and nanosized morphology, fostering increased surface area and optimized mass transport by reducing diffusion kinetics. The nanosized structure of PANI contributes to the maximization of active sites, thereby bolstering the efficacy of the nanocomposites for diverse applications. The inherent conductive nature of the rGO surface significantly expedites electron transport, thereby amplifying the overall electrochemical performance of the nanocomposites. To systematically evaluate the influence of PANI concentration on the electrode performance, varying concentrations of PANI were incorporated. Notably, an elevated PANI concentration was found to enhance the response owing to the unique morphology of PANI. Remarkably, the 5 % rGO@PANI NC emerged as the most promising candidate, demonstrating exceptional response characteristics with a specific capacitance of 314.2 F/g at a current density of 1 A/g. Furthermore, this catalyst exhibits outstanding long-term stability, retaining approximately 92 % of its capacitance even after enduring 4000 cycles. This research underscores the significance of the synergistic integration of rGO and PANI in the design of high-performance supercapacitors. The elucidation of the underlying mechanisms governing the improved electrochemical properties contributes to the fundamental understanding of nanocomposite behavior, thereby paving the way for the rational design of next-generation energy storage materials.
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