A visible-light-activated photocatalytic disinfection system using a TiO2/Ag3PO4 composite in an upflow photoreactor for household water treatment. The technology targets microbial inactivation and trace organic contaminant removal, offering an energy-efficient alternative to conventional UV-based water purification systems.
This research proposes a visible-light-activated photocatalytic disinfection system designed for household water treatment. The technology addresses limitations of conventional UV-based systems by using a composite photocatalyst that operates under visible light, significantly reducing energy requirements. The system builds on prior validated work with TiO2-coated quartz in an upflow photoreactor under UVC light, extending the approach by coupling TiO2 with a narrow-bandgap semiconductor (Ag3PO4) to enable visible-light-driven photocatalysis. The composite targets both microbial inactivation and degradation of trace organic contaminants in water.
Key features:
Validation approach:
The technology is at an early-to-mid stage of development. Preliminary validation has been completed for the TiO2-coated quartz system under UVC light, demonstrating higher photoactivity and energy efficiency compared to UV/H2O2 alone at similar UV doses. The current research phase focuses on adapting the validated upflow photoreactor platform to operate under visible light using the new Ag3PO4/TiO2 composite photocatalyst. Future work includes systematic evaluation of disinfection efficacy against representative bacterial targets at varying flow rates and contact times, with the goal of developing a household-scale disinfection system.
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