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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >The influence of the local structure of Fe(III) on the photocatalytic activity of doped HO2 photocatalysts—An EXAFS, XPS and Mossbauer spectroscopic study
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The influence of the local structure of Fe(III) on the photocatalytic activity of doped HO2 photocatalysts—An EXAFS, XPS and Mossbauer spectroscopic study

机译:Fe(III)局部结构对掺杂HO2光催化剂光催化活性的影响-EXAFS,XPS和Mossbauer光谱研究

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摘要

Fe(III)-doped TiO2 based heterogeneous photocatalysts were prepared by the sol-gel technique (S samples) or flame hydrolysis (F samples). In photocatalytic phenol decomposition, the undoped F-sample performed much better, than the undoped S one. However, for the S samples, photocatalytic activity first increased with the increasing Fe(III) concentration, and then passed through a maximum, while Fe(III)-doping in F samples significantly decreased it, even at the smallest dopant level. Since the same dopant caused opposite photocatalytic effects in the two series, their structure was systematically compared to identify the underlying chemical and/or physical reasons. The photocatalysts were first characterized by AAS, DRS, XRD and TEM methods and it has been shown that the differences in the photocatalytic activity cannot be explained by the minor variations in the bulk structural properties of TiO2. Mossbauer and XP spectroscopic measurements performed on representative samples qualitatively proved that the local structure of Fe(III) is different in the two series. To quantify these effects, Fe-K edge X-ray absorption measurements were performed. From the pre-edge and XANES region it was learnt that Fe(III) was present in a distorted octahedral environment in both series, however, the extent of distortion is much more significant within the S than within the F one. Information obtained from the EXAFS region indicated that the structure of Fe2O3 was much more ordered in the F-series then in the S one and vacancies were more abundant in the S than in the F series. Moreover, the geometry around Fe(III) systematically varied within the S-series, which could explain, why photocatalytic activity passed through a maximum with the increasing Fe(III) concentration in these samples.
机译:通过溶胶-凝胶技术(S样品)或火焰水解(F样品)制备了Fe(III)掺杂的TiO2基非均相光催化剂。在光催化苯酚分解中,未掺杂的F样品的性能要好于未掺杂的S样品。然而,对于S样品,光催化活性首先随Fe(III)浓度的增加而增加,然后最大,而F样品中的Fe(III)掺杂则显着降低了,即使在最小的掺杂水平下也是如此。由于相同的掺杂剂在两个系列中引起相反的光催化作用,因此系统地比较了它们的结构,以确定潜在的化学和/或物理原因。首先通过AAS,DRS,XRD和TEM方法对光催化剂进行了表征,结果表明,光催化活性的差异无法用TiO2整体结构性质的微小变化来解释。对代表性样品进行的Mossbauer和XP光谱测量定性地证明了Fe(III)的局部结构在两个系列中不同。为了量化这些影响,进行了Fe-K边缘X射线吸收测量。从前缘和XANES区域得知,Fe(III)在两个系列的扭曲八面体环境中均存在,但是,S内的畸变程度比F内显着得多。从EXAFS区域获得的信息表明,Fe系列的结构在F系列中比在S系列中更为有序,并且在S中的空位比在F系列中更为丰富。此外,Fe(III)周围的几何结构在S系列中系统地变化,这可以解释为什么这些样品中的光催化活性会随着Fe(III)浓度的增加而最大化。

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