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首页> 外文期刊>Journal of Computational Electronics >Plasmonic effect of metal nanoparticles on enhancing performance of transparent electrodes: a computational investigation
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Plasmonic effect of metal nanoparticles on enhancing performance of transparent electrodes: a computational investigation

机译:金属纳米粒子对增强透明电极性能的等离子效应:计算研究

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摘要

In this paper, metal nanoparticles are used as a new concept to enhance the optical and conductive properties of transparent electrode films. Finite difference time domain (3D-FDTD) numerical analysis is carried out to study the influence of engineered nanoparticles on the electrode transparency and resistivity performances. Our investigation demonstrates that metal nanoparticles are responsible for inducing plasmonic and light trapping effects, where their spatial arrangement, geometry and position in transparent conductive oxide (TCO) play a crucial role in modulating the electrode optical and electrical properties. Besides, an enhanced average transmittance and reduced sheet resistance over the conventional electrodes are recorded. Subsequently, a new hybrid modeling approach based on 3D-FDTD supported by genetic algorithm global optimization is proposed to identify the metal of nanoparticles and their spatial distribution, allowing an excellent trade-off between transparency and resistivity characteristics. Interestingly, the investigated electrode structure with optimized nanoparticles patterning showcases promising pathways for boosting the TCO performances, where it provides a high average figure of merit of 38x10(-3) ohm(-1). Therefore, this systematic investigation can provide more insights concerning the benefit of plasmonic effects for designing high-performance transparent electrodes suitable for optoelectronic and photovoltaic applications.
机译:在本文中,金属纳米颗粒被用作提高透明电极膜的光学和导电性能的新概念。进行时域有限差分(3D-FDTD)数值分析,以研究工程化纳米粒子对电极透明性和电阻率性能的影响。我们的研究表明,金属纳米粒子可引起等离子体和光陷阱效应,在透明导电氧化物(TCO)中它们的空间排列,几何形状和位置在调节电极的光学和电学性质方面起着至关重要的作用。此外,记录了常规电极上的平均透射率的提高和薄层电阻的减小。随后,提出了一种新的基于3D-FDTD的混合建模方法,该方法受遗传算法全局优化支持,用于识别纳米粒子的金属及其空间分布,从而可以在透明性和电阻率特性之间取得良好的平衡。有趣的是,采用优化的纳米颗粒图案进行研究的电极结构展示了提高TCO性能的有前途的途径,该途径可提供38x10(-3)ohm(-1)的高平均品质因数。因此,这项系统的研究可以为设计适用于光电和光伏应用的高性能透明电极提供等离激元效应益处的更多见解。

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