Vol. 9 No. 3 (2026)
Open Access
Peer Reviewed

OPTICAL PROPERTIES OF CITRUS HYSTRIX AND CURCUMA-INCORPORATED MICRO- AND NANO-TIO2 FILMS FOR DYE-SENSITIZED SOLAR CELL PHOTOANODES

Authors

Musyarofah Musyarofah , Bellia Prafilta Enggar Sasmita , Fadli Robiandi , Nurrisma Puspitasari , Budi Prayitno

DOI:

10.29303/ipr.v9i3.698

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Received: Jun 02, 2026
Accepted: Sep 10, 2026
Published: Sep 10, 2026

Abstract

Natural-dye-sensitized TiO2 films are promising photoanode materials for dye-sensitized solar cells (DSSCs) because natural dyes provide visible-light absorption and offer an environmentally friendly alternative to synthetic sensitizers. This study investigated the influence of sensitizer type, co-sensitization, and TiO2 crystallite size on the optical absorption properties and apparent optical band gap of dye-sensitized TiO2 films. Micro- and nano-TiO2 films sensitized with Citrus hystrix, Curcuma sp., and mixed-dye sensitizers were deposited on indium tin oxide (ITO) substrates by spin-coating. The optical responses of the films were analyzed using UV-Vis spectroscopy, and the apparent optical band gap energies were determined using the Tauc plot method. The research revealed that both sensitizer type and TiO2 crystallite sizes influenced the optical properties of the samples. Films containing Citrus hystrix exhibited higher optical absorption than those containing Curcuma sp. in both micro- and nano-TiO2 systems. The apparent optical band gap ranged from 2.82 to 3.68 eV. Of all the samples investigated, the nano-TiO2/Citrus hystrix films showed the least apparent optical band gap of 2.82 eV, revealing the most extended optical response toward low photon energies. Although co-sensitization extended the absorption profile, it did not yield lower apparent optical band-gap energies than those of the Citrus hystrix films. These results suggest that the optical behavior of dye-incorporated TiO2 films depends on the sensitizer-TiO2 combination. Each film configuration was fabricated and measured once; therefore, the reported values represent individual measurements without replicate-based statistical uncertainty. The results shed light on the production of TiO2-based photoanodes that are environmentally friendly for DSSC applications.

Keywords:

Natural dye Citrus hystrix Curcuma sp. TiO2 photoanodes Apparent optical band gap

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Author Biographies

Musyarofah Musyarofah, Department of Physics, Institut Teknologi Kalimantan

Author Origin : Indonesia

Bellia Prafilta Enggar Sasmita, Department of Physics, Institut Teknologi Kalimantan

Author Origin : Indonesia

Fadli Robiandi, Department of Physics, Institut Teknologi Kalimantan

Author Origin : Indonesia

Nurrisma Puspitasari, Department of Physics, Institut Teknologi Sepuluh Nopember

Author Origin : Indonesia

Budi Prayitno, Department of Mechanical Engineering, Universitas Balikpapan

Author Origin : Indonesia

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How to Cite

Musyarofah, M., Sasmita, B. P. E., Robiandi, F., Puspitasari, N., & Prayitno, B. (2026). OPTICAL PROPERTIES OF CITRUS HYSTRIX AND CURCUMA-INCORPORATED MICRO- AND NANO-TIO2 FILMS FOR DYE-SENSITIZED SOLAR CELL PHOTOANODES. Indonesian Physical Review, 9(3), 588–601. https://doi.org/10.29303/ipr.v9i3.698

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