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首页> 外文期刊>Small >Quantitative Determination of Contribution by Enhanced Local Electric Field, Antenna-Amplified Light Scattering, and Surface Energy Transfer to the Performance of Plasmonic Organic Solar Cells
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Quantitative Determination of Contribution by Enhanced Local Electric Field, Antenna-Amplified Light Scattering, and Surface Energy Transfer to the Performance of Plasmonic Organic Solar Cells

机译:通过增强局部电场,天线扩增光散射和表面能转移来定量测定局部能量传递到等离子体有机太阳能电池的性能

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摘要

Plasmonic metal nanostructures are widely used as subwavelength light concentrators to enhance light harvesting of organic solar cells through two photophysical effects, including enhanced local electric field (ELEF) and antenna-amplified light scattering (AALS), while their adverse quenching effect from surface energy transfer (SET) should be suppressed. In this work, a comprehensive study to unambiguously distinguish and quantitatively determine the specific influence and contribution of each effect on the overall performance of organic solar cells incorporated with Ag@SiO_2 core-shell nanoparticles (NPs) is presented. By investigating the photon conversion efficiency (PCE) as a function of the SiO_2 shell thickness, a strong competition between the ELEF and SET effects in the performance of the devices with the NPs embedded in the active layers is found, leading to a maximum PCE enhancement of 12.4% at the shell thickness of 5 nm. The results give new insights into the fundamental understanding of the photophysical mechanisms responsible for the performance enhancement of plasmonic organic solar cells and provide important guidelines for designing more-efficient plasmonic solar cells in general.
机译:等离子体金属纳米结构广泛用作亚波长光浓缩器,以通过两种光物理作用增强有机太阳能电池的光收集,包括增强的局部电场(ELEF)和天线扩增的光散射(AALS),而其来自表面能转移的不利淬火效果(设置)应抑制。在这项工作中,提出了一种综合研究,展示明确区分和定量地确定每种对掺入Ag / 2核 - 壳纳米粒子(NPS)的有机太阳能电池整体性能的特定影响和贡献。通过调查光子转换效率(PCCE)作为SiO_2壳体厚度的函数,找到ELEF与嵌入在活动层中的NPS性能的效果之间的强烈竞争,导致最大PCE增强壳厚度为5nm的12.4%。结果为对竞争性能增强性能增强的光物理机制的基本理解提供了新的见解,并提供了一般效率更高效的等级太阳能电池的重要准则。

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