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Plasmonic Ag@Oxide Nanoprisms for Enhanced Performance of Organic Solar Cells

机译:等离子体Ag @氧化物纳米棱镜增强有机太阳能电池的性能

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摘要

Localized surface plasmon resonance (LSPR), light scattering, and lowering the series resistance of noble metal nanoparticles (NPs) provide positive effect on the performance of photovoltaic device. However, the exciton recombination on the noble metal NPs accompanying above influences will deteriorate the performance of device. In this report, surface-modified Ag@oxide (TiO2 or SiO2) nanoprisms with 1-2 nm shell thickness are developed. The thin film composed of P3HT/Ag@oxides and P3HT:PCBM/Ag@oxides is investigated by absorption, photoluminescence (PL), and transient absorption spectroscopy. The results show a signifi cant absorption, PL enhancement, and long-lived photogenerated polaron in the P3HT/Ag@TiO2 film, indicating the increase of photogenerated exciton population by LSPR of Ag nanoprisms. In the case of P3HT/Ag nanoprisms, partial PL quench and relatively short-lived photogenerated polaron are observed. That indicates that the oxides layer can effectively avoid the exciton recombination. When the Ag@oxide nanoprisms are introduced into the active layer of P3HT:PCBM photovoltaic devices, about 31% of power conversion efficiency enhancement is obtained relative to the reference cell. All these results indicate that Ag@oxides can enhance the performance of the cell, at the same time the ultrathin oxide shell prevents from the exciton recombination.
机译:局部表面等离子体共振(LSPR),光散射以及降低贵金属纳米颗粒(NPs)的串联电阻可对光伏器件的性能产生积极影响。但是,伴随上述影响,贵金属NP上的激子复合会降低器件的性能。在此报告中,开发了具有1-2 nm壳厚度的表面改性Ag @氧化物(TiO2或SiO2)纳米棱镜。通过吸收,光致发光(PL)和瞬态吸收光谱研究了由P3HT / Ag @氧化物和P3HT:PCBM / Ag @氧化物组成的薄膜。结果表明,P3HT / Ag @ TiO2薄膜具有明显的吸收,PL增强和长寿命的光生极化子,表明Ag纳米棱镜的LSPR可以增加光生激子的数量。在P3HT / Ag纳米棱镜的情况下,观察到部分PL猝灭和相对短寿命的光生极化子。这表明氧化物层可以有效地避免激子复合。将Ag @氧化物纳米棱镜引入P3HT:PCBM光伏器件的有源层时,相对于参考电池,可获得约31%的功率转换效率增强。所有这些结果表明,Ag @氧化物可以增强电池的性能,同时超薄氧化物壳可以防止激子复合。

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