Project Grant 2212146
- This Project Grant award from the National Science Foundation's Engineering Program (CFDA 47.041) provides $286,982 to The University of Kentucky Research Foundation to advance the development of organic solar cells (OSCs) using greener manufacturing processes. The key objectives are to: Design and synthesize new zwitterionic conjugated polymers and organic molecules that can be solution-processed using biomass-derived solvents like Cyrene and gamma-valerolactone (GVL), which are more...
- This federal Project Grant award of $246,000.00, funded by the National Science Foundation's (NSF) Mathematical and Physical Sciences Program (CFDA 47.049), supports research to develop novel melt-processing methods for organic photovoltaic (OPV) materials. The objective is to understand and control the morphology of polymer-acceptor blends used in OPV active layers, which can enable previously inaccessible performance for light-harvesting applications. The research will be conducted by the...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program provides $267,000.00 in funding to Trustees of Boston University to conduct computational research and education focused on understanding the interaction of light with ordered assemblies of carbon-based organic molecules. The goal is to realize advanced solar energy conversion materials by developing physically intuitive models that elucidate the influence of molecular...
- This National Science Foundation (NSF) Project Grant under the Mathematical and Physical Sciences program (CFDA 47.049) in the amount of $499,892 awarded to the Regents of the University of Michigan aims to develop computational tools to predict the structure and properties of molecular interfaces in organic electronic and photonic devices. The research will integrate first principles quantum mechanical simulations, predictive machine learning algorithms, and experiments to enable a new paradigm...
- This Project Grant award of $398,065.00 from the National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems supports research at New York University (NYU) to develop a novel doping process for organic semiconductor materials used in devices like perovskite solar cells. The project aims to enhance the conductivity, uniformity, and stability of these materials by investigating the mechanisms of molecular and photo-assisted doping, including the effects of cationic...
- This three-year $500,000 Project Grant from the National Science Foundation's Mathematical and Physical Sciences program will support the development of novel azadipyrromethene (ADP)-based complexes as solution-processable semiconductors with applications in organic electronics and solar energy conversion. Principal Investigator Genevieve Sauve of Case Western Reserve University will synthesize ADP complexes coordinated with various metals to manipulate molecular geometry and tune optoelectronic...
- This $360,000 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) to Cornell University aims to advance the development of organic solar cells (OSCs) using more sustainable, biomass-derived solvents. The project will design and synthesize zwitterionized conjugated polymers and organic molecules that can be processed using the greener solvents cyrene and gamma-valerolactone (GVL). Through a combination of computational modeling and experimental...
- This Project Grant from the National Science Foundation will support the development of flexible, semitransparent organic solar cell modules tailored for greenhouse glazing integration by Polypv LLC. Funded under the NSF Technology, Innovation, and Partnerships program (CFDA 47.084), the $256,000 award issued on May 15, 2023 aims to optimize the active layer, electrodes, and encapsulation processes to produce high-performance flexible organic solar cells. The primary objectives are to develop...
- This Project Grant award from the National Science Foundation (NSF) Mathematical and Physical Sciences program (CFDA 47.049) provides $367,223 to William Marsh Rice University to research manipulating photon energy using perovskite-sensitized solid-state upconversion. The project aims to increase the portion of sunlight that can be used to generate electricity in solar cells by transforming low-energy photons into higher-energy photons through upconversion. The research will combine organic...
- This NSF-funded project grant awarded through the Mathematical and Physical Sciences Program (CFDA 47.049) focuses on developing new strategies for designing next-generation organic optoelectronic materials. The $330,940 award, with a project period from January 1, 2025 to December 31, 2027, supports a collaborative effort between researchers at Tufts University and the University of Connecticut. The project aims to enhance fundamental understanding of how chemical structure influences the...
RENEWAL: OVERCOMING ENERGY LOSS IN ORGANIC BULK HETEROJUNCTIONS -NON-TECHNICAL DESCRIPTION. SOLAR TECHNOLOGIES ARE INCREASINGLY PROVIDING ENERGY ACROSS THE US AT COSTS WELL BELOW EVEN THAT OF FOSSIL FUELS. IN SHORT, SOLAR ENERGY IS DELIVERING ON ITS PROMISE AS A SOURCE OF LOW COST, CLEAN AND RENEWABLE ENERGY. HOWEVER, SOLAR SOLUTIONS HAVE LARGELY BEEN BASED ON SILICON, WHICH IS FAR FROM AN OPTIMAL SOLUTION. NEW SOLUTIONS MUST HAVE THE OBJECTIVE OF MAKING SOLAR POWER UBIQUITOUS, HELPING TO FULFILL OUR EVER-EXPANDING ENERGY NEEDS. THESE INCLUDE SOLAR POWER GENERATING WINDOWS AND BUILDING-INTEGRATED PHOTOVOLTAICS AS WELL AS DEVICES THAT OPERATE AT VERY LOW LIGHT LEVELS TO SCAVENGE WASTE ILLUMINATION POWER. THIS IS AN URGENT AND FUNDAMENTAL TECHNOLOGICAL CHALLENGE. RECENTLY, THERE HAVE BEEN DRAMATIC INCREASES IN THE EFFICIENCY OF POTENTIALLY LOW-COST ORGANIC SOLAR CELLS TO OVER 19%, APPROACHING THAT OF SILICON CELLS. THIS PROJECT IS DIRECTED AT DETERMINING THE ULTIMATE POWER CONVERSION EFFICIENCY OF ORGANIC SOLAR CELLS. THE INVESTIGATORS WILL STUDY NEW ORGANIC MATERIALS WITH STATE-OF-THE-ART OPTICAL SPECTROSCOPY TO UNDERSTAND THE POWER GENERATING MECHANISMS THAT LIMIT THE EFFICIENCY OF ORGANIC SOLAR CELLS. THE PRINCIPLES DERIVED FROM THESE STUDIES CAN PROVIDE MOLECULAR DESIGN RULES AND GUIDE THE IMPROVEMENT OF ORGANIC SOLAR CELLS TOWARDS THEIR THEORETICAL LIMIT OF ~25% EFFICIENCY. THE PROJECT SUPPORTS TRAINING OF A DIVERSE WORKFORCE THROUGH THE EDUCATION OF GRADUATE AND UNDERGRADUATE STUDENTS IN MATERIALS DESIGN, SYNTHESIS, AND CHARACTERIZATION, COUPLED WITH DEVICE ENGINEERING AND SCIENTIFIC COMMUNICATION. THE PIS WILL RECRUIT AND RETAIN A DIVERSE NEXT GENERATION OF STUDENTS IN STEM FIELDS THROUGH DIVERSITY, EQUITY AND INCLUSION EFFORTS AT THE UNIVERSITY OF MICHIGAN, INCLUDING OUTREACH TO UNDERREPRESENTED GROUPS AND HOSTING A CONFERENCE FOR UNDERGRADUATE WOMEN IN PHYSICS. TECHNICAL DESCRIPTION. THE PRIMARY GOAL OF THIS PROJECT IS TO UNDERSTAND AND IMPROVE ORGANIC PHOTOVOLTAIC (OPV) DEVICES THROUGH IMPROVED MATERIALS AND DEVICE DESIGN STRATEGIES BASED ON QUANTUM MECHANICAL MODELS. DRAMATICALLY REDUCED ENERGY LOSSES IN THE CHARGE PHOTOGENERATION PROCESS MAY ULTIMATELY PROVIDE A PATHWAY TOWARDS ULTRALOW COST SOLAR POWER IN SITUATIONS WHERE ESTABLISHED, MATURE SOLAR TECHNOLOGIES ARE LESS EFFECTIVE. BEYOND SOLAR ENERGY HARVESTING, THESE SYSTEMS OPEN NEW AVENUES FOR ENGINEERING MATERIALS FOR CHARGE AND ENERGY TRANSPORT AT THE ATOMISTIC LEVEL, AND FOR THEIR EXPLOITATION IN APPLICATIONS AS LIGHT EMISSION, ENERGY AND CHARGE TRANSFER OVER EXCEPTIONAL DISTANCES, AND MAY EVEN RESULT IN EXTENDING ELECTRONIC TECHNOLOGY WELL BEYOND ITS CURRENT LIMITS. THIS PROJECT COMBINES THE INVESTIGATORS? EXTENSIVE EXPERTISE IN OPV MATERIALS, DESIGN AND CHARACTERIZATION WITH STATE-OF-THE-ART AND EMERGING MULTIDIMENSIONAL SPECTROSCOPIES TO UNDERSTAND THE ENERGY LOSS MECHANISMS THAT CURRENTLY LIMIT SINGLE JUNCTION ORGANIC SOLAR CELL DEVICE EFFICIENCIES. THE PRINCIPLES DERIVED FROM THESE FUNDAMENTAL STUDIES PROVIDE MOLECULAR DESIGN RULES TO GUIDE THE IMPROVEMENT OF CELL EFFICIENCIES TOWARDS THEIR THERMODYNAMIC LIMIT OF ~25%. THE WORK SIGNIFICANTLY EXPANDS THE SPECTROSCOPIC TOOLBOX FOR PROBING OPVS, PROVIDING TRANSFORMATIVE OPPORTUNITIES FOR UNDERSTANDING THE MECHANISMS OF CHARGE GENERATION AND CONCOMITANT ENERGY LOSSES. THE RESEARCH HAS THE FOLLOWING PRIMARY GOALS: (I) GAIN A FUNDAMENTAL UNDERSTANDING OF THE MECHANISMS GOVERNING CHARGE GENERATION AND ENERGY LOSS AT ORGANIC HETEROJUNCTIONS (HJS) TO INCREASE THE SOLAR-TO-ELECTRICAL POWER CONVERSION EFFICIENCY TO NEAR THE THERMODYNAMIC LIMIT; (II) MAP THE COMPLETE HJ CHARGE PHOTOGENERATION PROCESS USING MULTIDIMENSIONAL SPECTROSCOPY TO PROBE THE MECHANISMS OF CHARGE GENERATION AND THE ORIGINS OF ENERGY LOSS; (III) EXPLOIT ULTRASTRONG COUPLING IN UNIQUE LIGHT HARVESTING ARCHITECTURES TO REALIZE EXCITON-POLARITON TRANSFER WITH NEAR-ZERO ENERGY LOSS. 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.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 5/1/25 | ||
| Not listed | $666.6k | 4/22/22 |