Layered Double Hydroxide (LDH) technology for selective removal of phosphorus and nitrogen from urban stormwater runoff, with spent LDH reusable as a cement additive to reduce chloride-related corrosion in concrete.
Urban stormwater runoff carries excess nutrients such as phosphorus and nitrogen that degrade water quality in rivers, lakes, and reservoirs. This solution leverages Layered Double Hydroxides (LDHs), positively charged layered adsorbents with interlayer hydroxides, to selectively capture phosphate and nitrate from stormwater. A circular-economy benefit is built in: once the LDH is spent, it can be repurposed as a concrete additive that reduces chloride-induced corrosion in reinforced structures. The approach addresses two environmental challenges at once, nutrient pollution and infrastructure degradation, while creating a reusable waste stream.
The LDH adsorption platform has been validated at bench, column, and pilot scale for selenium, arsenic, phosphate, and other anions in powerplant cooling tower blowdown water. Prior work also characterized the effect of competing ions on sorption capacity. The proposed work will extend this foundation to phosphorus and nitrogen removal from actual and synthetic stormwater runoff, quantifying adsorption capacity, optimal hydraulic loading rates, empty bed contact times, and runtime-to-exhaustion through predictive mathematical models. Concrete reuse of spent LDH for corrosion mitigation will also be investigated. The technology is at an advanced validation stage and is well positioned for pilot-scale stormwater deployment and downstream concrete application studies.
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.