First Principle Study of Structural, Electronic, Optical Properties of Co-Doped ZnO

IF 3 Q2 MATERIALS SCIENCE, COMPOSITES
A. Soussi, Redouane Haounati, A. Ait hssi, M. Taoufiq, A. Asbayou, A. Elfanaoui, Rachid Markazi, K. Bouabid, A. Ihlal
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Abstract

In this theoretical study, the electronic, structural, and optical properties of copper-doped zinc oxide (CZO) were investigated using the full-potential linearized enhanced plane wave method (FP-LAPW) based on the density functional theory (DFT). The Tran–Blaha modified Becke–Johnson exchange potential approximation (TB-mBJ) was employed to enhance the accuracy of the electronic structure description. The introduction of copper atoms as donors in the ZnO resulted in a reduction in the material’s band gap from 2.82 eV to 2.72 eV, indicating enhanced conductivity. This reduction was attributed to the Co-3d intra-band transitions, primarily in the spin-down configuration, leading to increased optical absorption in the visible range. The Fermi level of the pure ZnO shifted towards the conduction band, indicating metal-like characteristics in the CZO. Additionally, the CZO nanowires displayed a significant blue shift in their optical properties, suggesting a change in the energy band structure. These findings not only contribute to a deeper understanding of the CZO’s fundamental properties but also open avenues for its potential applications in optoelectronic and photonic devices, where tailored electronic and optical characteristics are crucial. This study underscores the significance of computational techniques in predicting and understanding the behavior of doped semiconductors, offering valuable insights for the design and development of novel materials for advanced electronic applications.
共掺氧化锌的结构、电子和光学特性的初步研究
在本理论研究中,采用基于密度泛函理论(DFT)的全势线性化增强平面波方法(FP-LAPW)研究了铜掺杂氧化锌(CZO)的电子、结构和光学性质。为了提高电子结构描述的准确性,采用了trans - blaha修正的Becke-Johnson交换势近似(TB-mBJ)。在ZnO中引入铜原子作为供体,导致材料的带隙从2.82 eV减小到2.72 eV,表明电导率增强。这种减少归因于Co-3d带内跃迁,主要是在自旋向下配置中,导致可见光范围内的光吸收增加。纯ZnO的费米能级向导带移动,表明CZO具有类似金属的特性。此外,CZO纳米线的光学性质出现了明显的蓝移,表明其能带结构发生了变化。这些发现不仅有助于更深入地了解CZO的基本特性,而且还为其在光电和光子器件中的潜在应用开辟了道路,其中定制的电子和光学特性至关重要。这项研究强调了计算技术在预测和理解掺杂半导体行为方面的重要性,为设计和开发用于先进电子应用的新材料提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Composites Science
Journal of Composites Science MATERIALS SCIENCE, COMPOSITES-
CiteScore
5.00
自引率
9.10%
发文量
328
审稿时长
11 weeks
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