Self-supported 3D nanostructured photocatalysts that break down pollutants and disinfect water using sunlight or ambient light. These nanogrids leverage redox reactions activated by visible light to convert contaminants into benign components, offering a sustainable approach to water treatment.
This technology offers a novel approach to water purification through 3D, self-supported photocatalytic nanostructures known as Nanogrids. Designed to break down pollutants and disinfect water using sunlight or ambient visible light, the innovation was recognized by the Director of the National Science Foundation as one of three major breakthroughs across all NSF-funded research. The materials are intended to serve as a next-generation solution for contaminant removal, combining photocatalytic activity with a structural form that can be deployed in real-world water treatment scenarios.
The core value proposition is the ability to harness visible light, rather than requiring ultraviolet sources, to drive redox reactions that degrade pollutants into harmless byproducts. This opens the door to energy-efficient, sunlight-powered water treatment for applications ranging from industrial wastewater cleanup to decentralized drinking water disinfection.
Key features:
How it works:
The nanogrids are composed of nanostructured photocatalytic materials whose phase content, morphology, grain size, and shape have been engineered for high efficiency. When exposed to visible light, the catalysts generate reactive species through photoelectrochemical processes, measured using a three-electrode photoelectrochemical cell. These reactive species drive the breakdown of organic pollutants and inactivation of microorganisms in water.
The technology has undergone preliminary testing and pilot studies for water cleanup, with earlier work focused on optimizing TiO2 and CuWOx photocatalysts for decomposing benzene in water. Advanced materials characterization has confirmed the phase content, morphology, and relative phase distribution of the best-performing catalysts. Photoelectrochemical measurements have validated that the materials are highly efficient visible-light-activated catalysts.
Future validation efforts will pair the nanogrids with cellulose acetate membranes in a hybrid configuration to test disinfection against indicator bacteria and surrogate viruses. These studies will leverage resources from Ohio's Water Institute to advance the technology toward broader deployment readiness.
The Ohio State University is a comprehensive public land‑grant research university in Columbus, serving one of the nation’s largest student populations and a broad research enterprise. Industry partners engage through an integrated academic medical center for clinical translation, a campus‑adjacent innovation district for co‑located projects, and a statewide extension network that pilots solutions across Ohio. Corporate engagement provides a single front door for sponsored research, talent pipelines, and streamlined agreements. Research is supported by competitive federal funding from agencies such as NIH, NSF, DOE, USDA, DoD, and NASA. A dedicated technology transfer office and venture support help protect IP, license technologies, and launch startups.