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首页> 外文期刊>International Journal of Photoenergy >Theoretical Insight into the Spectral Characteristics of Fe(II)-Based Complexes for Dye-Sensitized Solar Cells—Part I: Polypyridyl Ancillary Ligands
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Theoretical Insight into the Spectral Characteristics of Fe(II)-Based Complexes for Dye-Sensitized Solar Cells—Part I: Polypyridyl Ancillary Ligands

机译:染料敏化太阳能电池基于Fe(II)的配合物的光谱特征的理论洞察-第一部分:聚吡啶基辅助配体

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摘要

The design of light-absorbent dyes with cheaper, safer, and more sustainable materials is one of the key issues for the future development of dye-sensitized solar cells (DSSCs). We report herein a theoretical investigation on a series of polypyridyl Fe(II)-based complexes of FeL2(SCN)2, [FeL3]2+, [FeL′(SCN)3]-, [FeL′2]2+, and FeL′′(SCN)2(L = 2,2′-bipyridyl-4,4′-dicarboxylic acid, L′ = 2,2′,2″-terpyridyl-4,4′,4″-tricarboxylic acid, L″= 4,4‴-dimethyl-2,2′ : 6′,2″ :6″,2‴-quaterpyridyl-4′,4″-biscarboxylic acid) by density functional theory (DFT) and time-dependent DFT (TD-DFT). Molecular geometries, electronic structures, and optical absorption spectra are predicted in both the gas phase and methyl cyanide (MeCN) solution. Our results show that polypyridyl Fe(II)-based complexes display multitransition characters of Fe → polypyridine metal-to-ligand charge transfer and ligand-to-ligand charge transfer in the range of 350–800 nm. Structural optimizations by choosing different polypyridyl ancillary ligands lead to alterations of the molecular orbital energies, oscillator strength, and spectral response range. Compared with Ru(II) sensitizers, Fe(II)-based complexes show similar characteristics and improving trend of optical absorption spectra along with the introduction of different polypyridyl ancillary ligands.
机译:设计具有更便宜,更安全,更可持续的材料的吸光染料是染料敏化太阳能电池(DSSC)未来发展的关键问题之一。我们在此报告了一系列关于FeL2(SCN)2,[FeL3] 2 +,[FeL'(SCN)3]-,[FeL'2] 2+和FeL''(SCN)2(L = 2,2'-联吡啶-4,4'-二羧酸,L'= 2,2',2''-叔吡啶基-4,4',4''-三羧酸,L ” = 4,4‴-二甲基-2,2':6',2”:6”,2‴-四吡啶基-4',4”-双羧酸)通过密度泛函理论(DFT)和随时间变化的DFT( TD-DFT)。可以预测气相和甲基氰化物(MeCN)溶液中的分子几何结构,电子结构和光吸收光谱。我们的研究结果表明,基于聚吡啶基Fe(II)的配合物在350-800 nm范围内显示Fe→聚吡啶金属到配体的电荷转移和配体到配体的电荷转移的多跃迁特征。通过选择不同的聚吡啶基辅助配体进行结构优化可导致分子轨道能量,振荡器强度和光谱响应范围发生变化。与Ru(II)敏化剂相比,基于Fe(II)的配合物显示出相似的特性,并且随着引入不同的聚吡啶基辅助配体而改善了光吸收光谱的趋势。

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