Molecular Engineering and Theoretical Investigation of Novel Metal-Free Organic Chromophores for Dye-Sensitized Solar Cells
No Thumbnail Available
Date
2015
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier Ltd
Abstract
In this work we report design and synthesis of three new metal free D-D-A-?-A type dyes (E<inf>1-3</inf>) with different acceptor/anchoring groups, as effective sensitizers for nanocrystalline titanium dioxide based dye sensitized solar cells. All the three dyes carry electron donating methoxy group as an auxiliary and indole as a principal donor, cyanovinylene as an auxiliary acceptor and thiophene as a ?-spacer. Whereas, cyanoacetic acid, rhodanine-3-acetic acid and 4-aminobenzoic acid perform as acceptor/anchoring moieties, respectively in the dyes E<inf>1-3</inf>. Though the dye containing 4-aminobenzoic acid unit (E<inf>3</inf>) exhibits comparatively lower ?<inf>max</inf>, it shows the highest power conversion efficiency arising from the higher electron life time and good light-harvesting capability. The DFT studies reveal a better charge separation between the HOMO and LUMO levels of E<inf>3</inf>, further substantiating the experimental results. Among the three dyes, E<inf>3</inf> shows the best photovoltaic performance with short-circuit current density (J<inf>sc</inf>) of 9.35 mA cm-2, open-circuit voltage (V<inf>oc</inf>) of 620 mV and fill factor (FF) of 0.71, corresponding to an overall conversion efficiency of 4.12% under standard global AM 1.5G. © 2015 Elsevier Ltd. All rights reserved.
Description
Keywords
Cell engineering, Chromophores, Conversion efficiency, Density functional theory, Design for testability, Nanocrystals, Open circuit voltage, Polycyclic aromatic hydrocarbons, Solar cells, Acceptors, Indole, Nanocrystalline titanium dioxide, Overall conversion efficiency, Photovoltaic performance, Power conversion efficiencies, Rhodanine-3-acetic acids, Theoretical investigations, Dye-sensitized solar cells
Citation
Electrochimica Acta, 2015, 176, , pp. 868-879
