4.7 Article

Exploring the impact of structural rigidification of amino-substituted bio-inspired flavylium dyes in DSSCs

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DYES AND PIGMENTS
卷 218, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.dyepig.2023.111495

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Dye-sensitized solar cells; Flavylium salts; Bio-inspired dyes; Titanium dioxide

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By introducing diethylamino and rigidified julolidine groups into the benzopyrylium core, flavylium derivatives similar to anthocyanins have been explored in dye-sensitized solar cells (DSSCs) with higher efficiency. However, the incorporation of julolidine groups resulted in a decrease in all DSSC parameters, and the self-aggregation processes of julolidine derivatives did not explain the decrease in efficiency. Bridging the benzopyrylium and phenyl rings demonstrated rigidification of flavylium dyes, leading to increased fluorescence quantum yields and a slight improvement in DSSC efficiency.
Sharing with anthocyanins the 2-phenyl-1-benzopyrylium structural motif, flavylium derivatives are strongly colored bio-inspired dyes that have been explored in dye-sensitized solar cells (DSSCs). Following on the fact that the most efficient flavylium-based dyes for DSSCs require amine electron-donating groups, a diethylamino group and the corresponding rigidified julolidine group were introduced in the benzopyrylium core. This structural variation was combined with another structural parameter - increased planarization of the flavylium ring system - to yield four flavylium derivatives all with a catechol anchoring group. The several pKa values of the new dyes and the UV-vis absorption data at different pH values and upon adsorption to TiO2 (corroborated by TD-DFT calculations) demonstrate a stronger delocalization of the nitrogen lone pair in the julolidine systems when compared to the diethylamino ones, reflecting the stronger electron-donating ability of the former. However, the julolidine-based dyes resulted in a decrease in all DSSC parameters, with efficiencies of 0.6% vs. 2.3% for the diethylamino devices. Discarding eventual increased self-aggregation processes of the more planar julolidine derivatives through studies with a de-aggregating agent (CDCA), and determining comparable dye loadings for all dyes, the presence of increased back-electron transfer processes for the julolidine-based compounds is advanced to explain their lower efficiencies. Rigidification of the flavylium dyes by bridging the benzopyrylium and the phenyl rings is demonstrated by higher fluorescence quantum yields and by electrochemical data and leads to a slight increase in the efficiency of the respective DSSCs. The results contribute to consolidate the potential of flavylium dyes as sensitizers for DSSCs.

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