Imas Masriah
Industrial Chemical Engineering Technology, Department of Mechanical Engineering, Politeknik Negeri Medan, 20155, Medan, Indonesia

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Carbon–TiO₂ Hybrid Photocatalysts: Roles of Carbon Types in Enhancing Photocatalytic Performance Devi Lestari; Imas Masriah; Juli Novita Sari; Amru Daulay
Nexus Sains dan Teknologi Vol. 2 No. 1 (2026): Nexus: Jurnal Sains dan Teknologi (Edisi Mei)
Publisher : Politeknik Negeri Medan

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.51510/nst.v2i1.3305

Abstract

Titanium dioxide (TiO₂) is one of the most extensively studied semiconductor photocatalysts due to its chemical stability, non-toxicity, and strong oxidizing ability. However, its practical application is hindered by a wide band gap (~3.2 eV for anatase), rapid charge carrier recombination, and limited visible-light response. The integration of various carbon-based materials with TiO₂ has emerged as a highly effective strategy for overcoming these limitations. This review systematically examines the distinct roles played by different carbon allotropes and carbon-based materials including graphene, reduced graphene oxide (rGO), carbon nanotubes (CNTs), carbon quantum dots (CQDs), graphitic carbon nitride (g-C₃N₄), activated carbon (AC), and biochar when hybridized with TiO₂. The mechanisms by which each carbon type enhances photocatalytic performance are critically analyzed, encompassing improved charge carrier separation, extension of light absorption to the visible region, elevated pollutant adsorption through synergistic effects, and the formation of unique heterojunction architectures. Furthermore, recent advances in synthesis methodologies, key photocatalytic applications in environmental remediation and energy conversion, and structure–activity relationships are comprehensively reviewed. Challenges pertaining to scalability, stability, and carbon loading optimization are identified, and future research directions are proposed. This review provides a unified framework for understanding how the structural and electronic properties of carbon materials govern the photocatalytic behavior of Carbon–TiO₂ hybrids, guiding the rational design of next generation photocatalysts.
Recent Advances in Green Synthesis of TiO₂ Nanoparticles: Mechanisms, and Applications Devi Lestari; Imas Masriah
Research in Chemical Engineering Vol. 4 No. 2 (2025): Research in Chemical Engineering
Publisher : Universitas Muhammadiyah Purwokerto

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.30595/rice.v4i2.316

Abstract

Green synthesis of titanium dioxide (TiO₂) nanoparticles has emerged as a sustainable alternative to conventional chemical methods, offering environmental benefits while maintaining superior performance characteristics. This comprehensive review examines recent advances in plant-mediated synthesis of TiO₂ nanoparticles, focusing on synthesis mechanisms, structural properties, and diverse applications. Various biological extracts including leaf extracts (Inula viscosa, Aloe vera, Jatropha curcas), flower extracts (Jasminum, Magnolia champaca), fruit peels (Solanum melongena, Citrus sinensis), and agro-industrial wastes have been successfully employed as bio-reductants and stabilizing agents. The synthesis mechanisms involve complex redox reactions mediated by phytochemicals such as polyphenols, flavonoids, terpenoids, and alkaloids, which serve dual roles as reducing agents and capping ligands. Characterization studies reveal that green synthesis predominantly yields anatase phase TiO₂ with particle sizes ranging from 6-400 nm, depending on the plant source and synthesis conditions. The biogenic nanoparticles demonstrate exceptional photocatalytic performance, achieving complete dye degradation (>99%) within 60 minutes under UV irradiation and enhanced visible light activity compared to conventional TiO₂. Noble metal doping (Au, Ag) further improves performance, with Au/TiO₂ nanocomposites showing 2.5 times higher activity than commercial P25 and remarkable hydrogen evolution rates (468 μmol H₂, 9.3% quantum yield). Applications span environmental remediation, renewable energy production, antimicrobial treatments, and advanced technologies including dye-sensitized solar cells, lithium-ion batteries, and corrosion protection coatings. Despite promising results, challenges remain in batch-to-batch variability and large-scale production standardization. This review consolidates current progress and identifies future research directions toward sustainable, high-performance TiO₂ nanomaterials for environmental and energy applications.