Carbazole-phenothiazine-based organic sensitizers via π-bridge functionalization with different electronegative/steric substituents: photophysical properties and DSSC performance

Abstract

As pivotal components in D-π-A dye sensitizers for dye-sensitized solar cells (DSSCs), π-bridge engineering strategies have demonstrated that structural and electronic modifications critically govern charge transfer dynamics and photovoltaic performance. This study systematically investigates four D-D-π-A sensitizers (CP-Ph, CP-Ph-F, CP-Ph-OMe, CP-Ph-Cl) with tailored substituents (-H, -F, -OMe, -Cl), enabling direct comparison of different electronegative/steric substituents to the performance of DSSCs. The interplay between electronic and steric effects dictates intramolecular charge transfer (ICT) absorption shifts in solution: strongly electronegative substituents (e.g., -F) induce a redshift through LUMO stabilization via dominant electronic effects, while sterically bulky groups (e.g., -Cl, -OMe) cause a blueshift by increasing dihedral angles and disrupting conjugation. Upon TiO₂ adsorption, all dyes exhibit pronounced bathochromic shifts in absorption spectra, enhancing light-harvesting efficiency. Electrochemical impedance spectroscopy and open-circuit voltage decay analyses reveal that both electronegative and steric substituents promote interfacial charge recombination, significantly shortening electron lifetimes. Among DSSC devices fabricated with the CP-series sensitizers, CP-Ph demonstrates optimal performance with Jsc = 14.25 mA cm-², Voc = 0.83 V, FF = 63.5%, and PCE =7.54%, highlighting the balance between electronic optimization and minimal steric compromise.

Supplementary files

Article information

Article type
Paper
Submitted
06 Mar 2025
Accepted
26 May 2025
First published
03 Jun 2025

J. Mater. Chem. C, 2025, Accepted Manuscript

Carbazole-phenothiazine-based organic sensitizers via π-bridge functionalization with different electronegative/steric substituents: photophysical properties and DSSC performance

W. Xu, X. Hu, J. Yuan, S. Fu, Y. Guang, B. Mi, Z. Q. Gao and T. Ma, J. Mater. Chem. C, 2025, Accepted Manuscript , DOI: 10.1039/D5TC01000D

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