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Effect of the bivalent dopant ionic radius, electronegativity and concentration on the physical properties of the sol-gel-derived ZnO thin films

机译:二价掺杂剂离子半径,电负性和浓度对溶胶 - 凝胶衍生ZnO薄膜物理性质的影响

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摘要

This study deals with the influence of the concentration and ionic radius of the bivalent dopant on the structural, morphological and optical properties of the sol-gel-derived ZnO thin films. For that, different concentrations of dopants with different radii (Ni~(2+), Cu~2, Fe~(2+)) have been chosen to synthesize many ZnO thin films. The X-ray diffraction confirms that all the obtained films exhibit a pure hexagonal wurtzite structure. Meanwhile, it appears that both the preferential film orientation and the crystal quality are strongly affected when varying the ionic radius or the concentration of dopant. We note also that the lattice parameters decrease when the electronegativity of the dopant increases. This behavior has been explained at the light of a simple schematic model, based on the electrostatic forces involved in chemical bonding. The Scherer formula reveals that the average size of the crystallites is ranged between 20 and 35 nm. On the other hand, as confirmed by the SEM analysis, all the deposited films present a compact, uniform and nanocrystalline morphology. Nonetheless, the optical analysis indicates that the Ni- and Fe-doped films are highly transparent (greater than 90%) in the visible region, while the Cu-doped ones exhibit the lowest transmission (about 76%). Additionally, a blue shift of the bandgap is noticed when doping with Ni or Fe, whereas the doping with Cu induces a red shift.
机译:本研究涉及二价掺杂剂浓度和离子半径对溶胶 - 凝胶衍生的ZnO薄膜的结构,形态和光学性质的影响。为此,已选择不同浓度的掺杂剂(Ni〜(2+),Cu〜2,Fe〜(2+))以合成许多ZnO薄膜。 X射线衍射证实,所有所得薄膜表现出纯六方紫立茨结构。同时,当改变离子半径或掺杂剂的浓度时,似乎优先膜取向和晶体质量都受到强烈影响。我们还注意到,当掺杂剂的电负性增加时,晶格参数减小。基于化学键合所涉及的静电力,已经以简单的原理图模型解释了这种行为。 Scherer公式显示,微晶的平均尺寸范围为20至35nm。另一方面,如SEM分析所确认,所有沉积的薄膜呈现紧凑,均匀和纳米晶体形态。尽管如此,光学分析表明,在可见区域中,Ni-和Fe掺杂的薄膜在可见区域中具有高度透明的(大于90%),而Cu掺杂的薄膜具有最低透射(约76%)。另外,在用Ni或Fe掺杂时,注意到带隙的蓝色偏移,而用Cu的掺杂会引起红色偏移。

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  • 来源
    《Journal of materials science》 |2020年第18期|15129-15139|共11页
  • 作者单位

    LCS Faculty of Science Mohammed V University in Rabat Rabat Morocco;

    LCS Faculty of Science Mohammed V University in Rabat Rabat Morocco;

    UATRS Division Materials Science Platform CNRST Rabat Morocco;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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