Project Grant 2401616
- This Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) provides $425,000 to Carnegie Mellon University to develop a chip-scale quantum spectroscopy solution for mid-infrared gas sensing. The key products and services to be delivered under this 3-year award include: (a) Optimization of a silicon-carbide-on-aluminum-nitride integrated photonics platform for low-loss performance from visible to mid-infrared spectra; (b) Development of silicon carbide...
- The National Science Foundation (NSF) awarded a $650,000 Project Grant under the NSF Technology, Innovation, and Partnerships (CFDA 47.084) program to the University of California, Los Angeles (UCLA) to develop a suite of portable, quantum-enhanced sensors for detecting and identifying bioaerosols. The project aims to advance the technology readiness level of sensor technologies targeting bioaerosols, which directly impact human, animal, plant, and climate health. The key products to be...
- The National Science Foundation (NSF) awarded a $998,320 Cooperative Agreement under the NSF Technology, Innovation, and Partnerships (TIP) program (CFDA 47.084) to Applied Ocean Sciences, LLC to develop an innovative ultrasound-based sensor for real-time detection and characterization of microplastics in water. This project aims to revolutionize microplastics monitoring capabilities by creating a rapid, cost-effective solution compared to existing optical-based methods. The sensor leverages...
- 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...
- 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 $500,000 Project Grant award from the National Science Foundation (NSF) Computer and Information Science and Engineering (CISE) program supports the development of a novel materials-based sensing system for detecting a variety of analytes or physiological states in biological fluids. The multidisciplinary team from Lehigh University, led by researchers in chemistry, materials science, bioengineering, and computer science, aims to create an initially "analyte-agnostic" nanosensor...
- The Regents of the University of California at Riverside received a $456,000 project grant award from the National Science Foundation on August 1, 2021 to develop high-performing nanoplasmonic biosensors with novel thin films and metasurfaces. The project aims to advance progress in the mathematical and physical sciences through the creation of new sensing technologies under the NSF's Mathematical and Physical Sciences program (CFDA 47.049). By leveraging nanophotonics and nanofabrication...
- The National Science Foundation awarded a $238,688 Project Grant to the Missouri University of Science and Technology under the Engineering program (CFDA 47.041) to develop a new type of biomolecule sensing platform enhanced by infrared chiral metasurfaces. The university will design and analyze various mid-infrared chiral metasurfaces with high circular dichroism for biomolecule sensing. Nanofabrication processes will be developed to fabricate the chiral metasurfaces and integrate...
- This Project Grant from the National Science Foundation Division of Ocean Sciences, under the Geosciences federal grant program (CFDA 47.050), provides $307,754 to the University of Illinois from July 2022 to June 2024. The award will support research using quantum cascade laser-based discrete frequency infrared imaging to characterize microplastic accumulation and tissue changes in zebrafish without histochemical staining. Researchers will create a comprehensive zebrafish tissue chemical...
- This three-year National Science Foundation project grant of $231,636 supports research at Stony Brook University to develop new biomolecule sensing techniques using infrared chiral metasurfaces. The researchers aim to design and analyze mid-infrared chiral metasurfaces with high circular dichroism for biosensing applications. They will fabricate the chiral metasurfaces and integrate microfluidic cells to characterize the sensing platform using infrared chiroptical measurements. The goal is to...
ADVANCED BIOCHEMICAL SENSING IN THE QUANTUM VIBRATIONAL STRONG COUPLING REGIME -SYNTHETIC CHEMICAL CONTAMINANTS, WHICH ARE FOUND EVERYWHERE IN OUR WATER AND FOOD ECOSYSTEMS, ARE HARMFUL TO HUMAN HEALTH AND WELL-BEING. FOR EXAMPLE, PLASTIC PARTICLES HAVE BEEN DETECTED IN VARIOUS HUMAN TISSUES AND BIOFLUIDS. HOWEVER, THE EFFECTS OF THESE PARTICLES ON HUMAN HEALTH HAVE NOT BEEN THOROUGHLY ASSESSED BECAUSE THE BIOMEDICAL COMMUNITY LACKS SENSITIVE ANALYTICAL METHODS TO DETECT PLASTIC PARTICLES FROM COMPLEX BIOLOGICAL SAMPLES. THIS HIGHLIGHTS THE CRITICAL NEED FOR ADVANCED SENSOR TECHNOLOGIES TO ASSESS HUMAN EXPOSURE TO POTENTIALLY TOXIC PARTICLES. THIS RESEARCH PROJECT AIMS TO DEVELOP A NEW BIOCHEMICAL SENSOR THAT ENABLES THE QUANTIFICATION OF SMALL PLASTIC PARTICLES FROM HUMAN BLOOD SERUM SAMPLES. THIS SENSITIVE AND ACCURATE SENSOR TECHNOLOGY WILL RELY ON THE STRONG INTERACTIONS OF LIGHT AND MATTER ON ENGINEERED SUBSTRATES. BEYOND DETECTING PLASTIC PARTICLE CONTAMINANTS, THIS BIOSENSOR TECHNOLOGY HAS THE POTENTIAL TO BE USED IN MEDICAL DIAGNOSTICS, BIOMANUFACTURING, AND ENVIRONMENTAL MONITORING APPLICATIONS. THE PROPOSED PROJECT WILL ALSO FACILITATE WORKFORCE DEVELOPMENT BY INTRODUCING NEW HANDS-ON EDUCATIONAL ACTIVITIES INTO THE CURRICULUM AND PROVIDING TAILORED RESEARCH EXPERIENCES TO STUDENTS ACROSS THE K12, UNDERGRADUATE, AND GRADUATE LEVELS AT THE JUNCTIONS OF PHOTONICS, QUANTUM INFORMATION SCIENCES, AND BIOTECHNOLOGY. MID-INFRARED ABSORPTION SPECTROSCOPY (MIRAS) CAN NON-DESTRUCTIVELY PROBE THE VIBRATIONAL STATES OF MOLECULES AND RAPIDLY MEASURE THE CHEMICAL COMPOSITION AND STRUCTURE OF MATTER; THUS, ITS APPLICATIONS PERVADE FUNDAMENTAL AND APPLIED SCIENCES. HOWEVER, SPECTRAL CONGESTION, INHERENTLY LOW MOLECULAR ABSORPTION CROSS-SECTIONS, AND THE ENTANGLEMENT OF PHYSICAL AND CHEMICAL PARAMETERS HINDER THE ACCURATE ANALYSIS OF REAL-WORLD SPECIMENS USING MIRAS. THE GOAL OF THIS PROJECT IS TO DEVELOP A NOVEL BIOCHEMICAL SENSING MECHANISM USING A NEW CLASS OF OPTICAL METASURFACES WITH POWERFUL LIGHT LOCALIZATION CAPABILITIES IN THE MID-INFRARED SPECTRAL RANGE. TO ADVANCE THE ANALYTICAL PERFORMANCE OF MIRAS, THE QUANTUM-COHERENT LIGHT-MATTER INTERACTIONS ENABLED BY THE HIGH-FINESSE PHOTONIC METASURFACES WILL BE LEVERAGED. THE SCIENTIFIC GOALS ARE TO DEMONSTRATE A NOVEL BIOCHEMICAL SENSING MECHANISM BY I) DEVELOPING NEW ENGINEERED SENSOR CHIPS, II) IDENTIFYING THE ANALYTICAL PERFORMANCE OF THE NEW SENSOR TECHNOLOGY IN DETECTING PLASTIC PARTICLES OF NUMEROUS DIMENSIONS AND COMPOSITIONS, AND III) IMPLEMENTING MACHINE LEARNING MODELS FOR AUTOMATED PARTICLE DETECTION AND CLASSIFICATION. THE RESULTING BIOCHEMICAL SENSOR TECHNOLOGY HAS THE POTENTIAL TO SIGNIFICANTLY EXPAND THE UTILITY OF INFRARED SPECTROMETRY METHODS TO ADDRESS REAL-WORLD CHALLENGES IN BIOMEDICAL RESEARCH AND BEYOND. 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 | $149.9k | 9/8/25 | ||
| Not listed | $287.9k | 7/15/24 |