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Hexagonal tungsten oxide-polyaniline hybrid electrodes for high- performance energy storage

机译:六角形氧化钨-聚苯胺混合电极,用于高性能储能

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摘要

Progress toward the development of advanced supercapacitor technologies is closely associated with the continuous evolution of nanostructured electrode materials. Herein, work is described in which an inner/outer layer nanostructured hexagonal tungsten oxide (h-WO3)-polyaniline (PANI) hybrid nanomaterial has been elaborately designed and synthesized by a hydrothermal-electrodeposition method. The surface morphology, molecular structure, crystal phase, and chemical composition of the hybrid nanomaterial were studied by FESEM (EDX), FTIR, XRD (SXRD), TEM, and XPS. The resulting WO3-PANI hybrid exhibits a significantly enhanced gravimetric specific capacitance (278 F/g at a current density of 1 A/g) with an outstanding areal specific capacitance of 979 mF/cm(2), good rate performance (77.2% capacitance retention from 0.5 to 10 A/g), and stable cycling performance (91.9% capacitance retention over 1500 cycles). The outstanding electrochemical properties of the WO3-PANI electrode are ascribed to its ingenious nanostructure design and the synergistic effects of each component. The symmetric supercapacitors based on WO3-PANI electrodes show a high areal capacitance and remarkable flexibility, suggesting potential application in flexible energy storage devices. Based on analysis and study the band structure and the electrochemical properties of the PANI-coated WO3 hybrid electrode, a possible mechanism for the synergistic effects was proposed in a new perspective.
机译:先进超级电容器技术的发展进展与纳米结构电极材料的不断发展密切相关。在本文中,描述了通过水热电沉积法精心设计和合成内/外层纳米结构化六边形氧化钨(h-WO3)-聚苯胺(PANI)杂化纳米材料的工作。通过FESEM(EDX),FTIR,XRD(SXRD),TEM和XPS研究了杂化纳米材料的表面形态,分子结构,晶相和化学组成。所得的WO3-PANI杂化体显示出显着增强的重量比电容(在1 A / g的电流密度下为278 F / g)和979 mF / cm(2)的出色的面积比电容,良好的倍率性能(77.2%电容)保持力从0.5到10 A / g)和稳定的循环性能(在1500个循环中保持91.9%的电容)。 WO3-PANI电极出色的电化学性能归因于其巧妙的纳米结构设计以及每种组分的协同效应。基于WO3-PANI电极的对称超级电容器显示出高的面电容和出色的柔韧性,表明在柔性储能设备中的潜在应用。在分析研究聚苯胺包覆的WO3杂化电极的能带结构和电化学性能的基础上,提出了一种可能的协同效应机理。

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