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Consequence of Mn and Ni doping on structural, optical and magnetic characteristics of ZnO nanopowders: the Williamson-Hall method, the Kramers-Kronig approach and magnetic interactions

机译:Mn和Ni掺杂对ZnO纳米粉的结构,光学和磁性特征的影响:Williamson-Hall方法,Kramers-Kronig方法和磁相互作用

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摘要

The crucial role of Ni and Mn dopants on the structural, optical, and magnetic characteristics of the zinc oxide (ZnO) nanopowders have been investigated in detail using XRD, diffuse reflectance spectroscopy (DRS), Kramers-Kronig (KK), and vibrating sample magnetometer (VSM). The structural analysis indicates that all patterns are mostly assigned to the hexagonal wurtzite structure. Also, XRD analysis shows that the Ni~(2+) and Mn~(2+) ions replace Zn~(2+) ions which causes lattice strain. Other than the Debye-Scherrer method, the Williamson-Hall method has also been applied to study the influence of strain in the calculation of the crystallite size. Based on DRS data, the band gap of the nanoparticles (NPs) is calculated by Tauc relation in two different ways. The band gap of the synthesized undoped ZnO NPs decreases from 3.25 to 3.23 and 3.15 eV through Ni and Mn doping, respectively. The band gap investigation shows a red-shift with Ni and Mn doping. The width of the localized states or sub-band gap absorption edge (often termed Urbach energy) of the samples was determined by the curves of Ln a versus photon energy hv. The optical parameters such as complex refractive index, complex dielectric function, and absorption coefficient of the samples were evaluated by applying KK method. Investigating on magnetic properties showed a room temperature ferromagnetic (RTFM) behavior. Also, the interactions and reasons of the observed RTFM mechanisms are examined in detail.
机译:使用XRD,漫反射光谱(DRS),Kramers-Kronig(KK)和振动样品详细研究了Ni和Mn掺杂剂对氧化锌(ZnO)纳米粉的结构,光学和磁性特征的关键作用。磁力计(VSM)。结构分析表明,所有图案主要分配给六角纤锌矿结构。另外,XRD分析表明Ni〜(2+)和Mn〜(2+)离子取代了Zn〜(2+)离子,引起晶格应变。除Debye-Scherrer方法外,Williamson-Hall方法还用于研究应变对微晶尺寸计算的影响。基于DRS数据,可以通过两种不同的Tauc关系来计算纳米粒子(NPs)的带隙。通过掺杂Ni和Mn,合成的未掺杂ZnO NP的带隙分别从3.25降低到3.23和3.15 eV。带隙研究表明,掺杂了镍和锰会产生红移。样品的局部态或子带隙吸收边缘的宽度(通常称为Urbach能量)由Ln a对光子能量hv的曲线确定。采用KK法对样品的光学参数,如复折射率,复介电函数和吸收系数进行了评价。磁性研究表明,室温铁磁(RTFM)行为。此外,详细检查了观察到的RTFM机制的相互作用和原因。

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