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Enhanced Performance of Layered Titanate Nanowire-Based Supercapacitor Electrodes by Nickel Ion Exchange

机译:镍离子交换增强基于钛酸纳米线的层状超级电容器电极的性能

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Titania nanostructured materials have been used extensively for the fabrication of electrochemical capacitors. However, the devices typically exhibit relatively low capacitance and poor cycling stability. Herein, we report the synthesis of a core—shell heterostructure based on layered titanate nanowires coated with nickel hydroxide nanosheets on a titanium mesh, referred to as K2Ti4O9@Ni(OH)2/Ti, by a simple nickel ion exchange reaction. The incorporation of nickel into the titanate nanowires is confirmed by X-ray photoelectron spectroscopic measurements and elemental mapping. Scanning electron microscopic and transmission electron microscopic measurements show the formation of a highly porous network of the hybrid nanowires. Electrochemical studies show that the K2Ti4O9@Ni(OH)2/Ti electrodes possess a high specific capacitance of 340 mF/cm~2 at 50 mV/s in an aqueous electrolyte of 3 M KOH and 3 mF/cm~2 at 0.04 mA/cm~2 in the KOH/PVA solid-state electrolyte, with an excellent retention rate of 92.5% after 2000 cycles and 92.7% after 10 000 cycles, respectively. Such a performance is a few tens of times better than that of the unmodified K2Ti4O9/Ti electrode. The enhanced capability of the chemically modified titanate electrodes may open up new opportunities in the development of low-cost, high-performance, and flexible supercapacitors.
机译:二氧化钛纳米结构材料已被广泛用于电化学电容器的制造。但是,这些器件通常表现出相对较低的电容和较差的循环稳定性。在本文中,我们报告了通过简单的镍离子交换反应,在钛网上涂覆氢氧化镍纳米片的层状钛酸酯纳米线,合成了核-壳异质结构,称为K2Ti4O9 @ Ni(OH)2 / Ti。 X射线光电子能谱测量和元素图谱确定了将镍结合到钛酸酯纳米线中。扫描电子显微镜和透射电子显微镜的测量显示出杂化纳米线的高度多孔网络的形成。电化学研究表明,K2Ti4O9 @ Ni(OH)2 / Ti电极在3 M KOH和3 mF / cm〜2的0.04 mA水溶液中具有50 mV / s的340 mF / cm〜2的高比电容。在KOH / PVA固态电解质中为/ cm〜2,在2000次循环后具有出色的保留率,在10000次循环后具有92.7%的优异保留率。这种性能比未修饰的K2Ti4O9 / Ti电极好几十倍。化学修饰的钛酸酯电极的增强功能可能为开发低成本,高性能和柔性超级电容器开辟新的机会。

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