Tio2 composite photocatalytic disinfection system for home water treatment

Technology
Conceptual
University

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.

Overview

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.

Technical specifications

Key features:

  • Composite photocatalyst: TiO2 coupled with Ag3PO4, a narrow-bandgap semiconductor, forming heterogeneous junctions that improve electron-hole pair separation
  • Visible-light activation: The composite enables photocatalytic activity under visible light, unlike TiO2 alone which requires UVC due to its wider bandgap
  • Upflow photoreactor design: A uniquely designed reactor with 50% fluidization of the catalyst bed, preventing catalyst loss and maintaining stable activity with repeated use
  • Supported catalyst: The composite is supported on quartz or microbeads to enhance stability and prevent loss of Ag3PO4, which is unstable in unsupported form
  • Dual functionality: Effective for microbial inactivation and photodegradation of trace organic contaminants in water
  • Energy efficiency: Prior UVC validation showed electric energy per order (EEO) reduction from approximately 1.6 kWh/m³-order to 0.25 kWh/m³-order with optimized catalyst-peroxide combinations

Validation approach:

  • Microbial inactivation testing using overnight bacterial cultures of Pseudomonas aeruginosa (ATCC 15442) and Staphylococcus aureus (ATCC 6538)
  • Spiked test water evaluated at different flow rates to assess efficacy across varying contact times
  • Influent and effluent samples analyzed on selective agar using spread plate methods
  • Homogeneous mixing ensured by injecting cultures through the inlet port
Technology readiness level

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.


About Arizona State University

Arizona State University is a comprehensive public research university with a multi-campus presence across the Phoenix metropolitan area and a scale that supports interdisciplinary, use-inspired discovery. Industry partners access co-located laboratories, a research and technology park, and innovation centers that house corporate teams with faculty to speed prototyping and validation. A formal alliance with a major hospital system and proximity to a fast-growing manufacturing corridor enable clinical translation and pilot-scale testbeds, while applied student engagements create dependable talent pipelines. Research is backed by competitive federal funding from agencies such as NSF, NIH, DOE, DOD, and NASA. A dedicated technology transfer office supports IP, licensing, and startup formation.

Sign up to access the full partnering listing.
View the details of this partnering listing and connect directly with the teams behind promising technologies.
Halo home
Partner smarter. Move faster.
Get new partnering requests
delivered to your inbox.