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Estimating the Maximum Attainable Efficiency in Dye-Sensitized Solar Cells

机译:估算染料敏化太阳能电池的最大可获得效率

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摘要

For an ideal solar cell, a maximum solar-to-electrical power conversion efficiency of just over 30% is achievable by harvesting UV to near IR photons up to 1.1 eV. Dye-sensitized solar cells (DSCs) are, however, not ideal. Here, the electrical and optical losses in the dye-sensitized system are reviewed, and the main losses in potential from the conversion of an absorbed photon at the optical bandgap of the sensitizer to the open-circuit voltage generated by the solar cell are specifically highlighted. In the first instance, the maximum power conversion efficiency attainable as a function of optical bandgap of the sensitizer and the "loss-in-potential" from the optical bandgap to the open-circuit voltage is estimated. For the best performing DSCs with current technology, the loss-in-potential is ~0.75 eV, which leads to a maximum power-conversion efficiency of 13.4% with an optical bandgap of 1.48 eV (840 nm absorption onset). Means by which the loss-in-potential could be reduced to 0.4 eV are discussed; a maximum efficiency of 20.25% with an optical bandgap of 1.31 eV (940 nm) is possible if this is achieved.
机译:对于理想的太阳能电池,通过将紫外线收集到高达1.1 eV的近红外光子,可以达到30%以上的最大太阳能发电效率。但是,染料敏化太阳能电池(DSC)并不理想。在这里,我们对染料敏化系统中的电和光损耗进行了回顾,并特别着重指出了在敏化剂的光学带隙处吸收的光子转换为太阳能电池产生的开路电压所产生的主要电势损耗。 。在第一种情况下,估计了根据敏化剂的光学带隙和从光学带隙到开路电压的“电位损失”而获得的最大功率转换效率。对于采用当前技术的最佳性能DSC,其电势损失约为0.75 eV,这导致最大的功率转换效率为13.4%,光带隙为1.48 eV(开始吸收840 nm)。讨论了将电位损失降低到0.4 eV的方法。如果实现这一点,则在带隙为1.31 eV(940 nm)的情况下,最大效率为20.25%。

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  • 来源
    《Advanced Functional Materials 》 |2010年第1期| 13-19| 共7页
  • 作者

    Henry J. Snaith;

  • 作者单位

    Department of Physics Clarendon Laboratory University of Oxford Parks Road, Oxford OX1 3PU (UK);

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  • 正文语种 eng
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