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Shining light on infection control: TiO 2 –graphene hybrids as next-gen germicidal platforms

2026/01/01 by Mirela Petruţa Şuchea, Petronela Pascariu, Ioan Valentin Tudose +11 · 1 voice
Energy · Engineering · #TiO2 Photocatalysis and Solar Cells #Graphene and Nanomaterials Applications #Advanced Photocatalysis Techniques

paper · doi:10.1515/ntrev-2025-0321

openalex publication_date 2026/01/01 · openalex created_date 2026/06/13 · openalex updated_date 2026/06/24

Abstract

Abstract The development of next-generation germicidal platforms is a critical response to rising microbial resistance and the global demand for sustainable disinfection technologies. This review offers a comprehensive analysis of hybrid materials based on pure and doped titanium dioxide (TiO 2 ) and graphene, focusing on their synergistic potential for enhanced germicidal applications. The paper begins with a brief overview of the structural, optical, and electronic properties of TiO 2 and graphene relevant to photocatalysis and antimicrobial activity. Recent advances in TiO 2 bandgap engineering – via doping and nanostructuring – are discussed in connection with improved UV and visible light–driven photocatalytic performance. In parallel, the intrinsic antimicrobial properties of graphene derivatives and their integration into composite materials are evaluated. Special emphasis is placed on TiO 2 /graphene hybrid systems, where the interplay between charge separation, light absorption, and surface reactivity yields superior disinfection efficiency. Through an in-depth survey of the latest experimental findings, the review presents germicidal mechanisms, identifies key synthesis strategies, and highlights real-world implementation various applications. Distinct from earlier reviews, this article synthesizes recent findings across multiple application domains – including antimicrobial coatings, air and water purification, hybrid membranes, textiles, and surface-functionalized materials – while comparing the relative germicidal performance of different TiO 2 /graphene configurations. A comparative framework is introduced to map the influence of key dopants and composite architectures on reactive oxygen species (ROS) generation and microbial response. The review concludes by identifying the main limitations that currently hinder large-scale implementation, including stability under real-life illumination, durability of hybrid interfaces, and standardization of germicidal assessment protocols. Emerging opportunities – such as visible light–active TiO 2 –graphene hybrids, multifunctional antimicrobial–photocatalytic coatings, and scalable electrospun or sol–gel derived architectures – are outlined as promising future directions for translating these materials into practical infection-control technologies.

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