Structural Properties of Mn Doped ZnO Nanocrystallites Using Wet Chemical Synthesis

Nii Abekah Akwetey Armah, Huvert Azoda Koffi
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Abstract

To get the required electrical, magnetic, structural and optical properties, materials are required to be doped with suitable impurities. The use of transition metals as a dopant in ZnO has been investigated to determine how they alter the various properties. Several research concerning the synthesis of TM-doped ZnO via various methods with the solubility limit of TM elements in ZnO has been reported. The distribution of the TMs into the ZnO matrix has been reported with divergent views. In this work, Mn doped ZnO nanoparticles has been synthesized by means of reasonable and ecologically friendly procedure by means of the liquid phase method with fewer conservational contaminants and no leftover products. The influence of the dopant on the structural properties of the produced ZnO nanocrystals was scrutinized using powder x-ray diffractogram (XRD). The Mn-doping concentration, x, was varied ( ) at temperatures of 180°C and 200 °C. Results of the lattice parameters, bond length, bond angles, crystallite size, strain, volume of unit cell, APF, number of unit cells, specific surface area and the density of the Mn-doped ZnO nanocrystal samples were be irregular in nature and not following a particular trend as the doping concentration increases. This variation in the values were due to the irregular values of the interplanar spacing and the observed variations in the shift of the peak angles as a result of the difference in ionic radii between Zn and Mn ions with Mn having multiple ionic radii since all the parameters are directly dependent on the value of the 2θ.
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湿法合成Mn掺杂ZnO纳米晶的结构特性
为了获得所需的电、磁、结构和光学性能,需要在材料中掺杂适当的杂质。研究了过渡金属作为ZnO掺杂剂的使用,以确定它们如何改变ZnO的各种性质。本文报道了利用TM元素在ZnO中的溶解度限制,通过各种方法合成TM掺杂ZnO的研究。对于TMs在ZnO基体中的分布,已有不同的报道。本文采用合理、环保的液相法合成了Mn掺杂ZnO纳米颗粒,具有较少的保守污染物和无残留产物。采用粉末x射线衍射仪(XRD)研究了掺杂物对ZnO纳米晶结构性能的影响。在180°C和200°C的温度下,mn掺杂浓度x变化()。结果表明,mn掺杂ZnO纳米晶样品的晶格参数、键长、键角、晶粒尺寸、应变、晶胞体积、APF、晶胞数、比表面积和密度随掺杂浓度的增加呈不规则的变化趋势。这些值的变化是由于面间距的不规则值和观察到的峰角位移的变化,这是由于Zn和Mn离子之间的离子半径的差异造成的,Mn具有多个离子半径,因为所有参数都直接依赖于2θ的值。
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