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Influence of Mn, Cu, and Cd-doping for titanium oxide nanotubes on the photocatalytic activity toward water splitting under visible light irradiation

机译:Mn,Cu和Cd-掺杂对氧化钛纳米管对可见光照射下的水分裂光催化活性的影响

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The photocatalytic activity of titanium oxide nanotubes toward water splitting under the visible light irradiation was improved by doping the nanotubes by three transition metals. The pristine titanate nanotubes have been prepared by the hydrothermal process. Then, a simple sonication process was exploited to induce the doping reaction. Transition metals with different electron configurations in the outer shell (Mn (3d(5) 4s(2) [Ar]), Cu (3d(10) 4s(1) [Ar]), and Cd (4d(10) 5s(2) [Kr])) were inserted in the titanate nanotubes to check their performance as dopants on the photocatalytic activity. TEM images showed the appearance of open-ends and multi-walled nanotubes. The XRD patterns proved the formation of titanate nanotubes. In addition, the XPS analysis confirmed doping the titanium oxide nanotubes by the selected metals. The UV-vis spectrum indicated that both Mn and Cu doping enhanced the reception of the visible light by 35 and 21.9%, respectively, while for Cd, the light absorption was slightly improved. The calculated band gap energies for the pristine, and Mn, Cu, and Cd-doped titanate were 3.54, 2.81, 3.2, and 3.54 eV, respectively. Interestingly, all the selected metals have distinctly improved the photocatalytic activity toward water splitting, however, with different mechanisms. Mn and Cu strongly increased the photon absorption by decreasing both of direct and indirect band gaps. On the other hand, Cd doping led to enhance the electrons lifetime. Moreover, the doped nanotubes revealed good stability, which was concluded by studying the cyclability of the Mn-doped titanate nanotube toward water splitting.
机译:通过用三种过渡金属掺杂纳米管改善了可见光照射下的氧化钛纳米管朝向水分裂的光催化活性。原始钛酸纳米管由水热法制备。然后,利用简单的超声处理过程来诱导掺杂反应。外壳中具有不同电子配置的过渡金属(Mn(3D(5)4(2)[Ar]),Cu(3D(10)4S(1)[Ar])和Cd(4D(10)5s( 2)将[Kr]))插入钛酸盐纳米管中以检查它们作为光催化活性的掺杂剂的性能。 TEM图像显示出开口和多壁纳米管的外观。 XRD图案证明了钛酸盐纳米管的形成。另外,XPS分析通过所选金属掺杂掺杂氧化钛纳米管。 UV-VIS谱表明,Mn和Cu掺杂均可分别增强了可见光的接收,分别为35和21.9%,而对于CD,光吸收略微改善。用于原始的用于原始的带隙能量,Mn,Cu和Cd掺杂钛酸盐分别为3.54,2.81,3.2和3.54eV。有趣的是,所有选定的金属都明显地改善了对水分裂的光催化活性,但具有不同的机制。通过降低直接和间接带间隙,Mn和Cu强烈增加光子吸收。另一方面,CD掺杂LED以增强电子寿命。此外,掺杂的纳米管揭示了良好的稳定性,通过研究Mn掺杂的钛酸盐纳米管朝向水分裂的可环性来结束。

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