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General rules for incorporating noble metal nanoparticles in organic solar cells

机译:用于在有机太阳能电池中掺入贵金属纳米粒子的一般规则

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Over the recent years, the influence of the addition of noble metal nanoparticles (Au, Ag, Al, Cu) into the bulk heterojunction (BHJ) solar cells on their efficiency of visible sunlight absorption has been excessively studied. However, several detailed studies were focused on compounds with similar chemical structure, and thus similar optical and electric properties. Such approach provides little help when it comes to admixing metallic nanoparticles into new compound families with different properties. Moreover, theoretical approaches frequently tend to neglect the fact, that nanoparticles have different dispersion relation than bulk material, which may lead to false conclusions. In this work, we consider additional dispersion modes in the metal permittivity due to finite size of the nanoparticles. We use Maxwell-Garnet effective medium approach (EMA), combined with the transfer matrix method, as well as finite-difference time-domain (FDTD) simulations, to create a set of general rules for incorporating noble metal nanoparticles into the active layer. These principles, based on assumed basic properties of the active layer (e.g. real and imaginary part of refractive index, thickness) provide optimal material, size spectrum and fill factor of nanoparticle inclusions in order to ensure the best absorption enhancement. Our results show, that the optimal concentrations for silver nanoparticles are about 50% greater than those determined without taking into account additional components in the permittivity of the metal.
机译:近年来,过度研究了对散装阳光吸收效率的贵金属纳米颗粒(Au,Ag,Al,Cu)的影响的影响已经过度研究了它们的可见光吸收效率。然而,将若干详细的研究重点是具有相似化学结构的化合物,因此具有类似的光学和电性能。这种方法在将金属纳米颗粒与不同性质的新化合物家族中与金属纳米颗粒相结合时提供很少的帮助。此外,理论方法经常倾向于疏忽这一事实,即纳米颗粒具有不同的分散关系,而不是散装材料,这可能导致错误的结论。在这项工作中,我们考虑由于纳米颗粒的有限尺寸的金属介质中的额外分散模式。我们使用Maxwell-Garnet有效介质方法(EMA),结合转移矩阵方法,以及有限差分时域(FDTD)模拟,以创建一组一般规则,用于将贵金属纳米颗粒掺入有源层。这些原理基于所假设的有源层的基本性质(例如,折射率的折射率,厚度的实部和虚部,厚度)提供最佳材料,尺寸谱和填充因子的纳米粒子夹杂物,以确保最佳吸收增强。我们的结果表明,银纳米粒子的最佳浓度约为50%,而不是在不考虑金属介电常数中的其他组分的情况下大约50%。

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