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首页> 外文期刊>Nanotechnology >Microstructure evolution of zinc oxide films derived from dip-coating sol-gel technique: Formation of nanorods through orientation attachment
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Microstructure evolution of zinc oxide films derived from dip-coating sol-gel technique: Formation of nanorods through orientation attachment

机译:浸涂溶胶-凝胶技术衍生的氧化锌薄膜的微观结构演变:通过取向附着形成纳米棒

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摘要

ZnO:Al thin films with Al incorporation of 0-20at.% were deposited through the sol-gel technique. Such a film undergoes a significant microstructure development, from columnar to granular structures and then nanorod arrays with increasing Al content. The important role of Al incorporation level in the microstructure evolution was determined using scanning electron microscopy, x-ray photoelectron spectroscopy and transmission electron microscopy. At low Al level, the transition from columnar to granular grains can be attributed to the coarsening barrier resulting from the introduction of Al into the matrix. However, oriented structures of ZnO nanorod arrays are formed at a high Al level. TEM investigation reveals that a nanorod with smooth morphology at the top and rough morphology at the bottom has a single-crystalline wurtzite structure, which is the aggregation of nanoparticles of a few nanometers in size formed through the orientation attachment mechanism followed by epitaxial growth on the aggregated particles. Finally, the physical properties of the ZnO films with different degrees of Al concentration are discussed. Such detailed microstructure studies may aid the understanding of the doping effect process on the growth of a film, which is essential to altering its physical or chemical properties.
机译:通过溶胶-凝胶技术沉积了Al含量为0-20at。%的ZnO:Al薄膜。这种膜经历了显着的微结构发展,从柱状结构到颗粒状结构,然后是具有增加的Al含量的纳米棒阵列。使用扫描电子显微镜,x射线光电子能谱和透射电子显微镜确定了Al掺入水平在微观结构演变中的重要作用。在低Al水平下,从柱状晶粒到粒状晶粒的过渡可归因于Al引入基体中导致的粗化势垒。然而,ZnO纳米棒阵列的定向结构是在高Al水平下形成的。 TEM研究表明,顶部具有光滑形态,底部具有粗糙形态的纳米棒具有单晶纤锌矿结构,这是通过取向附着机制随后在其上外延生长而形成的几纳米大小的纳米粒子的聚集体。聚集的颗粒。最后,讨论了不同Al浓度的ZnO薄膜的物理性能。此类详细的微观结构研究可能有助于理解掺杂对薄膜生长的影响过程,这对于改变其物理或化学性质至关重要。

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