Hamood Al Shidhani, Basim Al Farsi, R.G. Sumesh Sofin, Lamia Mohammed Al Farsi, Ahmed Al Shidhani, Zainab B. Al-Ruqeishi, Abey Issac, Khalil Al Farsi
Rising anthropogenic contamination of water supplies challenges access to clean water and limits the efficacy of conventional treatment methods. Here, we report a rapid microwave-assisted synthesis of undoped and 1 at.% group-III (Al, Ga, In)-doped ZnO nanorods grown on glass substrates, followed by annealing at 550 °C. Field-emission scanning electron microscopy shows well-defined hexagonal nanorods for all samples, while X-ray diffraction confirms a hexagonal wurtzite structure with strong preferential orientation maintained after doping. Energy-dispersive X-ray spectroscopy verifies successful incorporation of Al, Ga and In into the ZnO lattice. Optical characterization reveals dopant-dependent modifications to the electronic structure and enhanced visible-light absorption attributable to defect-related states. Photocatalytic testing under solar irradiation for phenol degradation indicates markedly improved activity for the doped nanorods; we attribute this enhancement to the introduction of shallow and deep trap levels that suppress charge-carrier recombination and promote charge separation. Among the materials studied, In-doped ZnO nanorods exhibit the highest photocatalytic performance, highlighting their potential for solar-driven water purification applications.