International Journal Publication
Asymmetric Fluorinated Cyclopenta [2, 1‐b: 3, 4‐b'] Dithiophene‐Based Hole‐Transporting Materials for Perovskite Solar Cell
Author affiliations and roles
- aCenter for Sustainability and Energy Technologies Chang Gung University Taoyuan 33302 Taiwan
- bCollege of Environment and Resources Ming Chi University of Technology New Taipei City 24301 Taiwan
- cDepartment of Chemical and Materials Engineering Chang Gung University Taoyuan 33302 Taiwan
- dDivision of Neonatology, Department of Pediatrics Chang Gung Memorial Hospital Linkou Taoyuan 33305 Taiwan
- eDepartment of Chemistry Soochow University Taipei 11102 Taiwan
- fInstitute of Chemistry Academia Sinica Taipei 115024 Taiwan
- gDepartment of Chemical and Materials Engineering Tamkang University New Taipei City 24301 Taiwan
- hNational Synchrotron Radiation Research Center (NSRRC) National Synchrotron Radiation Research Center Hsinchu 30092 Taiwan
- iDepartment of Materials Science and Engineering National Taiwan University of Science and Technology Taipei 106335 Taiwan
- jDepartment of Chemistry National Central University Taoyuan 32001 Taiwan
- kDepartment of Applied Physics The Hong Kong Polytechnic University Hung Hom Kowloon Hong Kong 999077 P. R. China
Chemistry–An Asian Journal (2025).
Research topic: Hole-Transporting Materials
Abstract
A series of asymmetric hole-transporting materials (HTMs) based on cyclopenta[2,1-b;3,4-b']dithiophene cores tethered with p-methoxytriphenylamines donor units with or without incorporated fluorine atoms were rationally designed, synthesized, and employed in perovskite solar cells (PSCs). A comprehensive comparison is conducted encompassing the absorption spectra, electrochemical characteristics, thermal stability, density functional theory (DFT) calculations, hole mobility, and surface morphology, as revealed by scanning electron microscopy (SEM) and atomic force microscopy (AFM), steady-state and time-resolved photoluminescence measurements, water contact angle analyzes, and photovoltaic parameters of the PSCs. The fluorinated HTMs, P-oF and P-mF, demonstrated enhanced hole mobility and more efficient charge extraction at the perovskite/HTM interface compared to their non-fluorinated counterpart. Consequently, PSCs employing P-oF and P-mF achieved power conversion efficiencies (PCEs) of 21.52% and 19.78%, respectively, with negligible hysteresis, outperforming devices based on P-H, which exhibited a PCE of 17.05%. Moreover, the operational stability of the device incorporating P-series as the HTM exceeded that of the PSCs employing the benchmark material of spiro-OMeTAD. The findings presented herein underscore the facile accessibility and potential of asymmetric compounds as alternative HTMs for PSCs. The results provide valuable insights and serve as a reference for the development of optimal HTMs for PSCs.
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Novel spirobifluorene-based fluorinated hole-transporting materials: Investigating the effect of asymmetry and substituent atoms on materials properties ↗
Materials Science and Engineering B · vol. 334, pp. 119827, 2026