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Super effective Zn-Fe-doped TiO2 nanofibers as photocatalyst for ammonia borane hydrolysis

机译:Zn-Fe掺杂的TiO2超高效纳米纤维作为氨硼烷水解的光催化剂

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In this study, the photocatalytic activity of TiO2 nanofibers toward ammonia borane hydrolysis has been strongly modified by doping the nanostructure by ZnO and Fe2O3 oxides. Due to the differences in the work function and band gap energy among the three semiconductors (TiO2, ZnO and Fe2O3), illumination of TiO2 leads to accumulate the electrons and holes on the conduction and valance bands of Fe2O3 and ZnO, respectively. Accordingly, the experimental results indicated that the surface of the obtained nanofibers is very active which results in an instant hydrolysis of ammonia borane molecules reaching the active zone surrounding the nanofibers. Moreover, negative activation energy was determined as increasing the temperature led to decrease the photocatalytic performance. Furthermore, kinetic studies indicated that the heterogeneous catalytic reaction describing the ammonia borane hydrolysis process is zero order which additionally supports the super activity of the introduced nanofibers. It was also observed that Fe2O3 content in the introduced nanofibers has distinct influence as the best performance was obtained at 1 wt%. The modified TiO2 nanofibers were prepared by calcination of electrospun nanofibers composed of titanium isopropoxide, zinc acetate and iron acetate in air at 700 degrees C for 1 h. Overall, the present study opens a new avenue to overcome the fast electrons/holes recombination dilemma facing TiO2-based nanostructures.
机译:在这项研究中,通过掺杂ZnO和Fe2O3氧化物的纳米结构,TiO2纳米纤维对氨硼烷的光催化活性已得到了很大的改善。由于三种半导体(TiO2,ZnO和Fe2O3)的功函数和带隙能的不同,TiO2的照射导致电子和空穴分别在Fe2O3和ZnO的导带和价带上积累。因此,实验结果表明,所获得的纳米纤维的表面非常活跃,这导致氨硼烷分子立即水解,到达纳米纤维周围的活性区。此外,随着温度升高导致光催化性能下降,确定了负活化能。此外,动力学研究表明,描述氨硼烷水解过程的非均相催化反应是零级的,这进一步支持了引入的纳米纤维的超活性。还观察到,引入的纳米纤维中的Fe 2 O 3含量具有明显的影响,因为在1 wt%时可获得最佳性能。改性的TiO2纳米纤维是通过在空气中700摄氏度下煅烧由异丙醇钛,乙酸锌和乙酸铁组成的电纺纳米纤维制备的。总的来说,本研究为克服面对基于TiO2的纳米结构的快速电子/空穴复合难题提供了新途径。

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