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Tunable Band Gap Energy of Mn-Doped ZnO Nanoparticles Using the Coprecipitation Technique

机译:使用共沉淀技术的Mn掺杂ZnO纳米粒子的可调带隙能

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A simple coprecipitation technique was introduced to form manganese (Mn) doped on zinc oxide (ZnO) nanoparticles effectively. Based on our morphological studies, it was revealed that mean particle size was increased while bigger agglomeration of nanoparticles could be observed as the amount of concentration of Mn was increased. Interestingly, it was found that the position of the absorption spectra was shifted towards the lower wavelength (UV region) as correlated with the increasing of Mn dopants concentration into ZnO nanoparticles. This result inferred that optimum content of Mn doped into the ZnO nanoparticles was crucial in controlling the visible/UV-responsive of samples. In the present study, 3 mol% of Mn dopants into the ZnO nanoparticles exhibited the better UV as well as visible light-responsive as compared to the other samples. The main reason might be attributed to the modification of electronic structure of ZnO nanoparticles via lattice doping of Mn ions into the lattice, whereas excessive Mn dopants doped on ZnO nanoparticles caused the strong UV-responsive due to the more 3d orbitals in the valence band.
机译:引入一种简单的共沉淀技术以有效地形成掺杂在氧化锌(ZnO)纳米颗粒上的锰(Mn)。根据我们的形态学研究,发现随着Mn浓度的增加,平均粒径会增加,而纳米颗粒的团聚会更大。有趣的是,发现吸收光谱的位置向着较低的波长(UV区)移动,这与ZnO纳米颗粒中Mn掺杂剂浓度的增加有关。该结果表明,掺杂到ZnO纳米颗粒中的Mn的最佳含量对于控制样品的可见/紫外线响应至关重要。在本研究中,与其他样品相比,进入ZnO纳米颗粒的3%(摩尔)的Mn掺杂剂表现出更好的紫外线以及可见光响应性。主要原因可能归因于通过将Mn离子晶格掺杂到晶格中来改变ZnO纳米粒子的电子结构,而由于价带中更多的3d轨道,掺杂在ZnO纳米粒子上的过量Mn掺杂剂引起强烈的紫外线响应。

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