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Increased light harvesting in dye-sensitized solar cells with energy relay dyes

机译:带有能量中继染料的染料敏化太阳能电池的光收集增加

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Conventional dye-sensitized solar cells have excellent charge collection efficiencies, high open-circuit voltages and good fill factors. However, dye-sensitized solar cells do not completely absorb all of the photons from the visible and near-infrared domain and consequently have lower short-circuit photocurrent densities than inorganic photovoltaic devices. Here, we present a new design where high-energy photons are absorbed by highly photoluminescent chromophores unattached to the titania and undergo Fo¨rster resonant energy transfer to the sensitizing dye. This novel architecture allows for broader spectral absorption, an increase in dye loading, and relaxes the design requirements for the sensitizing dye. We demonstrate a 26% increase in power conversion efficiency when using an energy relay dye (PTCDI) with an organic sensitizing dye (TT1). We estimate the average excitation transfer efficiency in this system to be at least 47%. This system offers a viable pathway to develop more efficient dye-sensitized solar cells.
机译:常规的染料敏化太阳能电池具有出色的电荷收集效率,高开路电压和良好的填充系数。但是,染料敏化太阳能电池不能完全吸收可见光和近红外域中的所有光子,因此,其短路光电流密度低于无机光伏器件。在这里,我们提出了一种新设计,其中高能光子被未附着在二氧化钛上的高光致发光发色团吸收,并经历福斯特共振能量转移到增感染料。这种新颖的架构可实现更宽的光谱吸收,增加染料负载量,并放宽了对敏化染料的设计要求。当将能量中继染料(PTCDI)与有机增感染料(TT1)一起使用时,我们证明了功率转换效率提高了26%。我们估计该系统中的平均激励传递效率至少为47%。该系统为开发更有效的染料敏化太阳能电池提供了一条可行的途径。

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