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Theoretical Procedure for Optimizing Dye-Sensitized Solar Cells: From Electronic Structure to Photovoltaic Efficiency

机译:优化染料敏化太阳能电池的理论程序:从电子结构到光伏效率

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摘要

A step-by-step theoretical protocol based on density functional theory (DFT) and time-dependent DFT at both the molecular and periodic levels is proposed for the design of dye-sensitized solar cell (DSSC) devices including dyes and electrolyte additives. This computational tool is tested with a fused polycydic pyridinium derivative as a novel dye prototype. First, the UV-vis spectrum of this dye alone is computed, and then the electronic structure of the system with the dye adsorbed on an oxide semiconductor surface is evaluated. The influence of the electrolyte part of the DSSC is investigated by explicitly taking into account the electrolyte molecules co-adsorbed with the dye on the surface. We find that ferf-butylpyridine (TBP) reduces the electron injection by a factor of 2, while lithium ion increases this injection by a factor of 2.4. Our stepwise protocol is successfully validated by experimental measurements, which establish that TBP divides the electronic injection by 1.6 whereas Li~+ multiplies this injection by 1.8. This procedure should be useful for molecular engineering in the field of DSSCs, not only as a complement to experimental approaches but also for improving them in terms of time and resource consumption.
机译:提出了一种基于密度泛函理论(DFT)和时间依赖性DFT的分子和周期水平分步理论方案,用于染料敏化太阳能电池(DSSC)器件的设计,包括染料和电解质添加剂。该计算工具已通过融合多环吡啶鎓衍生物作为新型染料原型进行了测试。首先,仅计算该染料的紫外-可见光谱,然后评估将染料吸附在氧化物半导体表面上的系统的电子结构。通过明确考虑与染料共吸附在表面上的电解质分子,研究了DSSC电解质部分的影响。我们发现,丁基丁基吡啶(TBP)将电子注入减少2倍,而锂离子将这种注入增加2.4倍。我们的分步方案已通过实验测量成功验证,该实验确定TBP将电子注入除以1.6,而Li〜+将该注入乘以1.8。该程序对于DSSC领域的分子工程学来说应该是有用的,不仅可以作为实验方法的补充,而且可以改善时间和资源消耗。

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  • 来源
    《Journal of the American Chemical Society》 |2011年第20期|p.8005-8013|共9页
  • 作者单位

    Laboratoire d'Electrochimie, Chimie des Interfaces et Modelisation pour l'Energie, UMR 7575 CNRS,Ecole Nationale Superieure de Chimie de Paris-Chimie ParisTech, 11 rue P. et M. Curie, 75231 Paris Cedex 05, France;

    Laboratoire d'Electrochimie, Chimie des Interfaces et Modelisation pour l'Energie, UMR 7575 CNRS,Ecole Nationale Superieure de Chimie de Paris-Chimie ParisTech, 11 rue P. et M. Curie, 75231 Paris Cedex 05, France;

    Laboratoire d'Electrochimie, Chimie des Interfaces et Modelisation pour l'Energie, UMR 7575 CNRS,Ecole Nationale Superieure de Chimie de Paris-Chimie ParisTech, 11 rue P. et M. Curie, 75231 Paris Cedex 05, France;

    Laboratoire ITODYS, UMR 7086 CNRS, Universite Paris Diderot, Sorbonne Paris Cite, Batiment Lavoisier, 15 rue Jean Antoine de Bai'f, 75205 Paris Cedex 13, France;

    Laboratoire d'Electrochimie, Chimie des Interfaces et Modelisation pour l'Energie, UMR 7575 CNRS,Ecole Nationale Superieure de Chimie de Paris-Chimie ParisTech, 11 rue P. et M. Curie, 75231 Paris Cedex 05, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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