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Fabrication of Hierarchical Indium Vanadate Materials for Supercapacitor Application

机译:用于超级电容器应用的分层铟钒酸盐材料的制造

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摘要

Transition metal orthovanadates are emerging 2D materials for promising electrochemical energy storage applications. Facile hydrothermal method for nanocrystalline indium vanadate (InVO4) semiconducting materials’ fabrication is economical because of its direct chemical synthesis. X‐ray diffraction studies, field emission scanning electron microscope (SEM) images, transmission electron microscopy (TEM), and photoelectron X‐ray spectrum are used to describe the semiconductor materials as synthesized. InVO4 microspheres have attracted a lot of attention in the energy and environmental sector. These microsphere‐derived semiconductor materials are recognized to offer the advantages of their large surface area, tunable pore sizes, enhanced light absorption, efficient carrier (electron–hole) separation, superior electronic and optical behavior, and high durability. From the results of SEM and TEM, InVO4 shows a microsphere construction with a mixture of nanosized particles. Diffuse reflectance UV–visible measurements are used to determine the bandgap, and it is found to be 2.1 eV for InVO4. The electrochemical analysis reveals a superior performance of the pseudocapacitor with hydrothermally derived microspheres of InVO4. Alongside an improved pseudocapacity, developed after 4000 cycles, it has excellent cycling stability with a retention of ≈94% of its original specific capacitance efficiency.
机译:过渡金属脱宽钒酸盐是新兴的2D材料,用于有前途的电化学能量储存应用。适用于纳米晶铟钒酸盐(INVO4)半导体材料的制造的容易水热量,因为其直接化学合成是经济的。 X射线衍射研究,场发射扫描电子显微镜(SEM)图像,透射电子显微镜(TEM)和光电子X射线光谱用于描述合成的半导体材料。 Invo4微球在能量和环境领域引起了很多关注。这些微球衍生的半导体材料被认识表提供了大表面积,可调谐孔径,增强的光吸收,高效载体(电子孔)分离,优异的电子和光学行为以及高耐久性的优点。从SEM和TEM的结果,INVO4显示了具有纳米粒子混合物的微球结构。弥漫反射率UV可见测量用于确定带隙,并且发现它是INVO4的2.1eV。电化学分析揭示了假偶联机的优异性能与Invo4的水热源衍生的微球。除了改进的假腐蚀,在4000次循环后开发,它具有优异的循环稳定性,保留其原始特定电容效率的≈94%。

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