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Electronic Properties of TiO2 Nanoparticles Films and the Effect on Apatite-Forming Ability

机译:TiO2纳米颗粒薄膜的电子性质及其对磷灰石形成能力的影响

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摘要

Nanoparticle-covered electrodes have altered properties as compared to conventional electrodes with same chemical composition. The changes originate from the large surface area and enhanced conduction. To test the mineralization capacity of such materials, TiO2 nanoparticles were deposited on titanium and gold substrates. The electrochemical properties were investigated using cyclic voltammetry and impedance spectroscopy while the mineralization was tested by immersion in simulated body fluid. Two types of nucleation and growth behaviours were observed. For smooth nanoparticle surfaces, the initial nucleation is fast with the formation of few small nuclei of hydroxyapatite. With time, an amorphous 2D film develops with a Ca/P ratio close to 1.5. For the rougher surfaces, the nucleation is delayed but once it starts, thick layers are formed. Also the electronic properties of the oxides were shown to be important. Both density of states (DOS) in the bandgap of TiO2 and the active area were determined. The maximum in DOS was found to correlate with the donor density (N d) and the active surface area. The results clearly show that a rough surface with high conductivity is beneficial for formation of thick apatite layers, while the nanoparticle covered electrodes show early nucleation but limited apatite formation.
机译:与具有相同化学组成的常规电极相比,纳米颗粒覆盖的电极具有改变的特性。变化源自大的表面积和增强的传导。为了测试此类材料的矿化能力,将TiO2纳米颗粒沉积在钛和金基底上。使用循环伏安法和阻抗谱研究了电化学性质,同时通过浸入模拟体液中测试了矿化作用。观察到两种类型的成核和生长行为。对于光滑的纳米颗粒表面,初始成核速度很快,并且形成了少量的羟基磷灰石小核。随着时间的流逝,非晶2D薄膜的Ca / P比接近1.5。对于较粗糙的表面,成核会延迟,但是一旦开始,就会形成厚层。氧化物的电子性质也被证明是重要的。确定了TiO2带隙中的态密度(DOS)和有效面积。发现DOS中的最大值与供体密度(N d)和活性表面积相关。结果清楚地表明,具有高电导率的粗糙表面有利于厚厚的磷灰石层的形成,而纳米颗粒覆盖的电极显示出早期的成核作用,但是磷灰石的形成受到限制。

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