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The Effect of Laser Re-Solidification on Microstructure and Photo-Electrochemical Properties of Fe-Decorated TiO

机译:激光再凝固对Fe装饰TiO的微观结构和光电化学性能的影响

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摘要

Fossil fuels became increasingly unpleasant energy source due to their negative impact on the environment; thus, attractiveness of renewable, and especially solar energy, is growing worldwide. Among others, the research is focused on smart combination of simple compounds towards formation of the photoactive materials. Following that, our work concerns the optimized manipulation of laser light coupled with the iron sputtering to transform titania that is mostly UV-active, as well as exhibiting poor oxygen evolution reaction to the material responding to solar light, and that can be further used in water splitting process. The preparation route of the material was based on anodization providing well organized system of nanotubes, while magnetron sputtering ensures formation of thin iron films. The last step covering pulsed laser treatment of 355 nm wavelength significantly changes the material morphology and structure, inducing partial melting and formation of oxygen vacancies in the elementary cell. Depending on the applied fluence, anatase, rutile, and hematite phases were recognized in the final product. The formation of a re-solidified layer on the surface of the nanotubes, in which thickness depends on the laser fluence, was shown by microstructure studies. Although a drastic decrement of light absorption was recorded especially in UV range, laser-annealed samples have shown activity under visible light even 20 times higher than bare titania. Electrochemical analysis has shown that the improvement of photoresponse originates mainly from over an order of magnitude higher charge carrier density as revealed by Mott-Schottky analysis. The results show that intense laser light can modulate the semiconductor properties significantly and can be considered as a promising tool towards activation of initially inactive material for the visible light harvesting.
机译:由于它们对环境的负面影响,化石燃料变得越来越令人不快的能源;因此,可再生能力,特别是太阳能的吸引力正在全世界正在增长。其中,该研究专注于简单化合物的智能组合朝向形成光活性材料。在此之后,我们的工作涉及与铁溅射耦合的激光的优化操作,以转化大多数紫外线活性的二氧化钛,以及对响应太阳灯的材料的差的氧气进化反应,并且可以进一步使用水分裂过程。材料的制备途径基于提供纳米管井有组织系统的阳极氧化,而磁控溅射确保形成薄的铁膜。覆盖355nm波长的脉冲激光处理的最后一步显着改变了材料形态和结构,诱导了基本细胞中的偏熔和氧空位的形成。取决于所施加的注量,锐钛矿,金红石和赤铁矿相在最终产品中得到认可。通过微观结构研究表明,在纳米管表面上形成厚度取决于激光物流量的重新固化层。尽管在紫外线范围内记录了光吸收的急剧下降,但是激光退火样品在可见光下显示出的活性甚至比裸二氧化钛高20倍。电化学分析表明,光响应的改善主要来自较高的电荷载体密度,由Mott-Schottky分析揭示。结果表明,激烈的激光可以显着调节半导体性能,并且可以被认为是朝向可见光收获的最初不活性材料的激活工具。

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