EventsThe 6th International Electronic Conference on Applied Sciences
Published
This submission belongs to the session S2. Nanosciences, Chemistry and Materials Science of the event The 6th International Electronic Conference on Applied Sciences
Published date
03 Dec, 2025
Academic Editor
author-avatarAlberto Jiménez Suárez
Citation
Najla EL AALLAOUI, Benyounes OUKARFI, Mimoun ZAZOUI, Anna Zawadzka, Characterization of the Photophysical properties of carbazole based hole transporting material thin films deposited by physical vapor deposition (PVD), in Proceedings of The 6th International Electronic Conference on Applied Sciences, 9 December–11 December 2025, MDPI: Basel, Switzerland
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Characterization of the Photophysical properties of carbazole based hole transporting material thin films deposited by physical vapor deposition (PVD)

Benyounes OUKARFI 1
Mimoun ZAZOUI 1
Anna Zawadzka 2
1. Laboratory of Materials, Energy and Control System, Faculty of Sciences and Technology, Hassan II University of Casablanca, Mohammedia, Morocco, Morocco
2. Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University, Grudziądzka Torun, Poland, Poland
Abstract

Perovskite solar cells (PSCs) have emerged as a groundbreaking photovoltaic technology, achieving power conversion efficiencies exceeding 25% with the integration of organic small-molecule hole transport materials (HTMs). Despite this significant advancement, large-scale commercialization remains hindered by the high cost of HTMs and the inherent instability of perovskite materials. Among the most widely used HTMs, Spiro-OMeTAD exhibits excellent optoelectronic properties; however, its complex synthesis and costly purification pose major barriers to widespread adoption. Overcoming these challenges requires the development of alternative, cost-effective HTMs with comparable or enhanced performance to improve both the efficiency and stability of PSCs.

This study explores the optoelectronic properties of carbazole-based derivatives as potential HTMs for PSC applications. Thin films were fabricated via the sol-gel spin coating technique on glass substrates, using chlorobenzene as the solvent. The molecular structure of the investigated compound was confirmed through FTIR analysis, while UV-visible absorption and photoluminescence spectroscopy were employed to assess its optical properties. The resulting films exhibited high transparency in the visible spectrum and strong UV absorption, highlighting their suitability for photovoltaic integration. The estimated optical bandgap of the studied compound was approximately 2.8 eV. Furthermore, a strong green emission in the visible region further underscores its potential for optoelectronic applications.

Keywords
Carbazole
hole transporting Material
perovskite solar cells
photoluminescence.
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