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Inverted Ultrathin Organic Solar Cells with a Quasi-Grating Structure for Efficient Carrier Collection and Dip-less Visible Optical Absorption

机译:具有准光栅结构的倒置超薄有机太阳能电池可实现有效的载流子收集和无倾角的可见光吸收

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摘要

We propose a metallic-particle-based two-dimensional quasi-grating structure for application to an organic solar cell. With the use of oblate spheroidal nanoparticles in contact with an anode of inverted, ultrathin organic solar cells (OSCs), the quasi-grating structure offers strong hybridization between localized surface plasmons and plasmonic gap modes leading to broadband (300~800 nm) and uniform (average ~90%) optical absorption spectra. Both strong optical enhancement in extreme confinement within the active layer (90 nm) and improved hole collection are thus realized. A coupled optical-electrical multi-physics optimization shows a large (~33%) enhancement in the optical absorption (corresponding to an absorption efficiency of ~47%, AM1.5G weighted, visible) when compared to a control OSC without the quasi-grating structure. That translates into a significant electrical performance gain of ~22% in short circuit current and ~15% in the power conversion efficiency (PCE), leading to an energy conversion efficiency (~6%) which is comparable to that of optically-thick inverted OSCs (3–7%). Detailed analysis on the influences of mode hybridization to optical field distributions, exciton generation rate, charge carrier collection efficiency and electrical conversion efficiency is provided, to offer an integrated understanding on the coupled optical-electrical optimization of ultrathin OSCs.
机译:我们提出了一种基于金属粒子的二维准光栅结构,用于有机太阳能电池。通过使用扁球形的纳米粒子与倒置的超薄有机太阳能电池(OSC)的阳极接触,准光栅结构在局部表面等离子体激元与等离子体间隙模式之间提供了强大的杂交,从而产生了宽带(300〜800 nm)且均匀(平均〜90%)的光吸收光谱。因此,既可以实现对有源层(90 nm)内极限范围内的强光学增强,又可以改善空穴收集。与没有准准控制的OSC相比,光电多物理场优化耦合显示光吸收大(〜33%)提高(相当于〜47%的吸收效率,AM1.5G加权,可见)。光栅结构。这意味着在短路电流中约22%的电气性能显着提高,在功率转换效率(PCE)中约15%的电气性能得到了显着提高,其能量转换效率(〜6%)可以与光学厚型倒相器相比OSC(3–7%)。详细分析了模式混合对光场分布,激子产生速率,电荷载流子收集效率和电转换效率的影响,以提供对超薄OSC耦合光电优化的综合理解。

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