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Plasmonic Enhancement of Dye Sensitized Solar Cells via a Tailored Size-Distribution of Chemically Functionalized Gold Nanoparticles

机译:通过化学功能化金纳米粒子的量身定制的染料敏化太阳能电池的等离子体增强。

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摘要

A substantial and stable increase of the current density Jsc of ruthenium (Ru) dye sensitized solar cells (DSC) of up to 16.18% and of the power efficiency of up to 25.5% is demonstrated in this article via plasmonic enhancement. The key aspect of this work is the use of a tailored bimodal size distribution of functionalized gold nanoparticles (AuNPs) that have been chemically immobilized onto the mesoporous titanium dioxide (TiO2) layer via short, stable dithiodibutyric acid linkers. The size distribution of the AuNPs is a result of theoretical calculations that aimed at the perfection of the absorption characteristics of the complete solar cell system over a wide range of wavelengths. The functionalization of the AuNPs serves to bind them at a close but defined distance to TiO2-particles and additionally to chemically protect them against potential corrosion by the electrolyte. Simulations of near field (enhanced absorption) and far field (scattering) contributions have been used to tailor a complex AuNPs bimodal size distribution that had subsequently demonstrated experimentally a close to optimum improvement of the absorbance over a wide wavelength range (500–675 nm) and therefore an impressive DSC efficiency enhancement. Finally, the modified DSCs are exhibiting pronounced longevity and stable performance as confirmed via long time measurements. In summary, the presented systems show increased performance compared to non plasmonic enhanced cells with otherwise identical composition, and are demonstrating a previously unpublished longevity for iodide electrolyte/AuNPs combinations.
机译:本文通过等离激元增强技术证明了钌(Ru)染料敏化太阳能电池(DSC)的电流密度Jsc显着稳定增长,功率效率高达25.5%。这项工作的关键方面是使用功能化的金纳米粒子(AuNP)的量身定制的双峰尺寸分布,该功能化金纳米粒子已通过短而稳定的二硫代二丁酸接头化学固定在介孔二氧化钛(TiO2)层上。 AuNPs的尺寸分布是理论计算的结果,其目的在于完善整个太阳能电池系统在宽波长范围内的吸收特性。 AuNPs的功能化可以使它们与TiO2颗粒之间的距离接近但确定,并且化学保护它们免受电解质的潜在腐蚀。近场(增强吸收)和远场(散射)贡献的模拟已用于定制复杂的AuNPs双峰大小分布,随后通过实验证明了在较宽的波长范围(500-675 nm)中吸光度几乎达到最佳提高。因此,DSC效率得到了显着提高。最后,经过长时间测量证实,改性的DSC具有很长的使用寿命和稳定的性能。总而言之,与具有其他相同组成的非等离子体增强电池相比,本发明的系统显示出提高的性能,并且证明了碘化物电解质/ AuNPs组合的先前未公开的寿命。

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