Project Grant 2317822
- This Project Grant from the National Science Foundation Division of Ocean Sciences, under the Geosciences federal grant program (CFDA 47.050), provides $262,534 to develop a novel carbon nanotube-based phosphate sensor for oceanographic use from June 1, 2022 to May 31, 2023. The University of Washington, through its Office of Sponsored Programs, will build and characterize a prototype potentiometric phosphate sensor using carbon nanotubes to test the sensor's response, sensitivity, lower...
- This $650,000 Project Grant award from the National Science Foundation (NSF) under the NSF Technology, Innovation, and Partnerships program (CFDA 47.084) supports the development of engineered microbial sensors for assessing water quality. The primary objective is to create new low-cost sensing systems that can detect chemicals in water throughout the water cycle, including wastewater treatment, drinking water, industrial use, and stormwater discharges. The project employs a convergence research...
- This National Science Foundation (NSF) Project Grant under the Convergence Accelerator program (CFDA 47.084 - NSF Technology, Innovation, and Partnerships) provides $649,984 to the Regents of the University of Minnesota, doing business as the Office of Sponsored Projects Administration, to develop a compact, customizable chemical sensing system integrated with new microsensors and data management/analytics technologies. The goal is to accurately quantify and monitor high-priority water...
- Federal Cooperative Agreement Summary The National Science Foundation (NSF) Technology, Innovation, and Partnerships program (CFDA 47.084) awarded a $2.0 million cooperative agreement to Columbia University, effective July 1, 2025 through June 30, 2028, to develop engineered microbial sensors for detecting per- and polyfluoroalkyl substances (PFAS) in drinking water. The project delivers TrueBlue Sensing devices—hybrid bioelectronic sensors in a disposable dipstick format—that enable...
- This $622,016 Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) supports the collaborative development of a novel self-powered, multimodal pH, pressure, and temperature MEMS sensor system for marine carbon dioxide removal (MCDR) monitoring. The project involves researchers from the University of North Texas, University of Michigan, and University of California San Diego working to design, fabricate, and test this innovative sensor array to provide...
- This $933,796 Project Grant from the National Science Foundation's Division of Civil, Mechanical, and Manufacturing Innovation, under the Engineering program (CFDA 47.041), funds the development of paper-based biosensor test strips to detect soil contaminants such as arsenic and PFAS. Rensselaer Polytechnic Institute will engage citizen scientists and use bacteria as sensors to produce quantitative readings of contaminant concentrations in soil. Two types of bacteria - E. coli functioning as the...
- This $500,000 Project Grant award from the National Science Foundation (NSF) Office of International Science and Engineering (CFDA 47.079) supports the "LEVERAGING BIO-CHEMICAL AND GREENHOUSE GAS SENSORS FOR SUSTAINABLE AGRICULTURE INNOVATIONS (BIOSENSEINNOVATIONS)" project. The project aims to develop cutting-edge sensors that can detect nutrients, chemical compounds, soil microbiomes, and greenhouse gases in real-time to advance precision agriculture and promote sustainable farming...
- This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) provides $400,000 over 3 years to the Regents of the University of Michigan to develop a novel self-powered multimodal MEMS sensor system that can simultaneously detect pH, pressure, and temperature in marine environments. The researchers aim to create an innovative, highly sensitive, and energy-efficient sensor to support marine carbon dioxide removal (MCDR) efforts by providing uninterrupted,...
- This $300,000 federal Project Grant award from the National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) program aims to identify promising treatment technologies for phosphorus (P) mitigation in the Everglades ecosystem of South Florida. The University of Florida (UF) is the prime awardee and will engage with stakeholders to understand their technological needs and perspectives, evaluate existing and emerging P-sorbing products and technologies, and develop...
- This $200,000 Project Grant awarded by the National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems aims to develop a novel water quality monitoring system based on plasmonic sensing with metal-insulator-metal (MIM) nanosensors embedded in soft hydrogel matrices. The key research activities include: 1) modeling and designing the Au-SiO2-Au MIM nanosensors using finite element analysis, 2) synthesizing and testing these nanosensors to optimize plasmonic...
COLLABORATIVE RESEARCH: GCR: CONVERGENCE ON PHOSPHORUS SENSING FOR UNDERSTANDING GLOBAL BIOGEOCHEMISTRY AND ENABLING POLLUTION MANAGEMENT AND MITIGATION -PHOSPHORUS (P) IS AN ESSENTIAL ELEMENT THAT FORMS THE BASIS FOR ALL LIFE ON EARTH. PHOSPHORUS PLAYS A CENTRAL ROLE IN BIOGEOCHEMICAL CYCLES THAT BROADLY IMPACT GLOBAL BIOLOGICAL PRODUCTIVITY, FOOD RESOURCES, ENERGY GENERATION, AND CLIMATE. UNDERSTANDING THE COMPLEX INTERRELATIONSHIPS BETWEEN CRITICAL FOOD, ENERGY, AND WATER RESOURCES AND ADDRESSING PHOSPHORUS DEMAND, POLLUTION, AND RECOVERY ARE SOME OF THE GREATEST SCIENTIFIC CHALLENGES FOR A SUSTAINABLE FUTURE. AT THE ROOT OF THESE PROBLEMS IS THE INABILITY TO MEASURE PHOSPHORUS DIRECTLY WHEN AND WHERE ONE WOULD LIKE AND TO DO SO IN A COST-EFFECTIVE MANNER. THIS TECHNOLOGY GAP PRECLUDES THE ABILITY TO CLOSE THE ?PHOSPHORUS CYCLE? AT REGIONAL, NATIONAL, AND GLOBAL SCALES. THIS GROWING CONVERGENCE RESEARCH PROJECT WILL OVERCOME FUNDAMENTAL SCIENCE, ENGINEERING, AND PROTOTYPING CHALLENGES TO ENABLE PORTABLE, LOW-COST, ROBUST, AND SELECTIVE SENSORS FOR PHOSPHORUS THAT ADDRESS THESE CRITICAL AND UNMET NEEDS. THIS PROJECT BRINGS TOGETHER RESEARCHERS WITH EXPERTISE SPANNING SUPRAMOLECULAR AND INORGANIC CHEMISTRY, POLYMER SCIENCE, SOFT-MATTER ELECTRONICS, ELECTRICAL ENGINEERING, AND ENVIRONMENTAL AND MARINE SCIENCE. CONVERGENT SCIENTIFIC, TECHNOLOGICAL, AND ENGINEERING ADVANCES WILL COALESCE TO REALIZE NEW PARADIGMS FOR CONTROL AT THE CHEMICAL, SUPRAMOLECULAR, TRANSDUCTION, AND DEVICE LEVELS THAT WILL ULTIMATELY SERVE AS THE BASIS FOR USHERING IN A COMPLETELY NEW GENERATION OF SENSORS FOR PHOSPHORUS. THESE SENSORS WILL SATISFY THE FUNCTIONAL AND ECONOMIC REQUIREMENTS NEEDED TO PROVIDE PRAGMATIC SOLUTIONS FOR CAPTURING THE COMPLEXITY OF HOW PHOSPHORUS EXISTS IN SPACE AND TIME WITHIN AGRICULTURAL LANDSCAPES, WATERWAYS, AND ECOSYSTEMS. ENGAGEMENTS WITH STAKEHOLDERS, INDUSTRIAL PARTNERS, AND GOVERNMENT AGENCIES WILL GUIDE EFFORTS TOWARDS ADDITIONAL APPLICATIONS, COMMERCIALIZATION, AND OTHER SOCIETALLY RELEVANT SENSING CHALLENGES. THIS CONVERGENT RESEARCH PROGRAM WILL INTEGRATE BASIC SCIENCE AND ENGINEERING APPROACHES TOGETHER AND COMBINE SIGNIFICANT INTELLECTUAL AND TECHNICAL OVERLAP BETWEEN TRADITIONALLY DISPARATE DISCIPLINES TO ADDRESS LONG-STANDING CHALLENGES THAT HAVE LIMITED THE DEVELOPMENT OF PHOSPHORUS SENSING TECHNOLOGIES. SPECIFIC OBJECTIVES OF THE PROGRAM ARE TO: (1) DESIGN, DEVELOP AND UNDERSTAND HOW MOLECULAR RECOGNITION ELEMENTS (?RECEPTORS?) SELECTIVELY BIND PHOSPHORUS IN THE FORM OF INORGANIC AND ORGANIC PHOSPHATE COMPOUNDS, (2) TAILOR RECEPTOR-ANALYTE-SEMICONDUCTOR INTERACTIONS AND INVESTIGATE HOW THEY SPECIFICALLY TRANSDUCE THE PHOSPHATE-BINDING EVENTS INTO A SENSITIVE SIGNAL; (3) INTEGRATE THESE CHEMISTRIES WITHIN LOW-COST ELECTRONIC DEVICES; (4) ENGINEER SENSORS THAT ENABLE SENSITIVE QUANTIFICATION IN COMPLEX ENVIRONMENTS FOR MANAGING THE PHOSPHORUS CYCLE INCLUDING AGRICULTURAL RUNOFF, WASTEWATER, AND FRESH, BRACKISH, ESTUARINE, AND MARINE ENVIRONMENTS; (5) COMMUNICATE CHEMICAL PHOSPHATE DETECTION TO ELECTRONIC PLATFORMS TO DIGITIZE AND RELAY THIS DATA; AND (6) DEVELOP PROTOTYPES FOR FIELD USE AND DEMONSTRATIONS. THIS HOLISTIC APPROACH WILL PRODUCE FIELD-DEPLOYABLE TECHNOLOGIES FOR PHOSPHORUS THAT ARE LOW-COST, OPERATE IN REAL-TIME, AND DIRECTLY INTERFACE WITH COMMERCIAL PLATFORMS BROADLY UTILIZED WITHIN AGRICULTURAL, ENVIRONMENTAL, AND MARINE MONITORING. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $864.2k | 8/26/25 | ||
| Not listed | $313.7k | 9/19/23 |