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Surface Plasmon Resonance Enhanced Polymer Solar Cells by Thermally Evaporating Au into Buffer Layer

机译:通过将Au热蒸发到缓冲层中来增强表面等离子体共振的聚合物太阳能电池

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摘要

Generally, the surface plasmon resonance (SPR) effect of metal nanoparticles is widely applied on polymer solar cells (PSCs) to improve device performance by doping method into solution. Herein, a diameter-controlled thermally evaporation method was used to realize Au nanoparticles (Au NPs) doping into WO3 anode buffer layer in inverted PSCs. The surface energy differences between Au and WO3 inevitably lead to Au growing up through the process from nucleation, isolated island, aggregation of metal islands to continuous films along with the process of evaporation. The atom force microscopy (AFM) images indicate that critical thickness of Au film formation is 8 nm, which is in accordance with current density-voltage (J-V) and incident photon-to-electron conversion efficiency (IPCE) measurement results of optimal device performance. The power conversion efficiency (PCE) with 8 nm Au is dramatically improved from 4.67 +/- 0.13% to 6.63 +/- 0.17% compared to the one without Au. Moreover, the optical absorption enhancement is demonstrated by steady state photoluminescence (PL), which agrees well with transmission spectrum. The optical and electrical improvement all suggest that thermal evaporation is the appropriate method to further enhance device performance.
机译:通常,金属纳米粒子的表面等离子体激元共振(SPR)效应被广泛应用于聚合物太阳能电池(PSC),以通过在溶液中掺杂方法来提高器件性能。在本文中,使用直径控制的热蒸发方法来实现倒入PSC中掺入WO3阳极缓冲层的Au纳米颗粒(Au NPs)。 Au和WO3之间的表面能差异不可避免地导致Au在从成核,孤立岛,金属岛聚集到连续膜以及蒸发过程的过程中长大。原子力显微镜(AFM)图像表明,金膜形成的临界厚度为8 nm,这与最佳器件性能的电流密度-电压(JV)和入射光子-电子转换效率(IPCE)测量结果一致。与没有Au的相比,具有8 nm Au的功率转换效率(PCE)从4.67 +/- 0.13%显着提高到6.63 +/- 0.17%。此外,通过稳态光致发光(PL)证明了光吸收增强,这与透射光谱非常吻合。光学和电气方面的改进都表明热蒸发是进一步提高器件性能的合适方法。

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