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Preparation and capacitance behavior of nickel oxide-titania nanocomposite

机译:氧化镍-二氧化钛纳米复合材料的制备及电容性能

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Titania nanotube array with an average tube diameter of 110 nm and length of 700 nm was fabricated by a potentiostatic anodization on titanium metal sheet. Nickel oxide was then loaded into titania nanotubes by electrodepositon-electrooxidation and heating treatment processes. The morphology and microstructure of the nanocomposite were investigated by field emission scanning electron microscope (FESEM), X-ray diffraction (XRD), and energy dispersive x-ray (EDX) analysis. Nickel oxide could well coat on titania nanotubes from inner wall to pore mouth with a high loading amount up to 36.4% of nickel-to-titanium atom ratio. Such a well-defined nickel oxide-titania/titanium nanotubular composite was designed as a functional electrode for an electrochemical capacitance application. The result of electrochemical characterization exhibits a highly reversible redox peaks by cyclic voltammetry in sodium hydroxide aqueous solution. High specific supercapacitance was accordingly achieved up to 7.8 mF cm~(-2) due to the intensive loading of nickel oxide.
机译:通过在钛金属板上进行恒电位阳极氧化来制造平均管直径为110 nm,长度为700 nm的二氧化钛纳米管阵列。然后通过电沉积-电氧化和热处理工艺将氧化镍加载到二氧化钛纳米管中。通过场发射扫描电子显微镜(FESEM),X射线衍射(XRD)和能量色散X射线(EDX)分析研究了纳米复合材料的形貌和微观结构。氧化镍可以从内壁到孔口很好地涂覆在二氧化钛纳米管上,其负载量高达镍钛原子比的36.4%。将这种定义明确的氧化镍-二氧化钛/钛纳米管复合材料用作电化学电容应用的功能电极。电化学表征的结果在氢氧化钠水溶液中通过循环伏安法显示出高度可逆的氧化还原峰。由于氧化镍的大量负载,因此获得了高达7.8 mF cm〜(-2)的高比超电容。

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