Project Grant 2338386

Award Date 6/1/24
Completion Date 5/31/29
Dollars Obligated $580K
Federal Grant Program
47.041
Assistance Type
Project Grant
Place of Performance
Fairfax, VA, USA
Similar Awards
This National Science Foundation (NSF) Faculty Early Career Development (CAREER) award provides $500,000 over 5 years to the New Jersey Institute of Technology (NJIT) to conduct research, education, and outreach activities in the Engineering program (CFDA 47.041). The project aims to gain fundamental knowledge about the interrelated electrical, chemical, and mechanical behaviors of multiscale active materials for next-generation energy storage applications. Key objectives include studying...
This five-year, $409,876 project grant from the National Science Foundation's Division of Chemical, Bioengineering, Environmental, and Transport Systems aims to develop a comprehensive theoretical framework to predict multiscale and multicomponent electrolyte transport in porous media. Funded under the NSF Engineering program (CFDA 47.041), the award will support research at the University of Colorado to model ion transport through complex pore networks and experimentally validate the results....
The National Science Foundation awarded a CAREER grant of $156,611 to The Washington University Office of Sponsored Research Services Division in St. Louis, Missouri under the Mathematical and Physical Sciences (CFDA 47.049) program. This grant supports the development of a new family of highly ordered, chemically stable, and elastic porous organic materials through a novel synthesis approach. The key goals are to achieve high adsorption capacity and selectivity for applications in areas like...
This National Science Foundation (NSF) Engineering program (CFDA 47.041) Project Grant award of $200,000 to the Trustees of the Stevens Institute of Technology will fund research to develop porous polymeric nanoparticles and investigate their porosity-dependent interactions with the surrounding environment. The project aims to control the size, geometry, and distribution of the porous nanoparticles by incorporating and subsequently etching away sacrificial gold nanoparticles. Key research...
This three-year $580,000 Project Grant from the National Science Foundation's Division of Chemical, Bioengineering, Environmental, and Transport Systems will fund research into quantifying the role of interfaces in liquid separation membranes based on carbon molecular sieves. The goal is to develop fundamental knowledge of how interfaces impact liquid transport across carbon molecular sieve membranes at length scales below and above one micrometer. Investigators will combine advanced diffusion...
This $500,000 National Science Foundation project grant supports fundamental research at Clark University to develop scalable manufacturing methods for organic semiconducting nanoparticles with applications in energy storage. Principal Investigator will investigate the interplay of aerosol formation and vapor phase chemistry to control synthetic pathways for producing highly conductive nanoparticles through aerosol-based synthesis. The research aims to achieve mechanistic understanding of...
The National Science Foundation Division of Chemical, Bioengineering, Environmental, and Transport Systems awarded a $245,000 Project Grant to the South Dakota School of Mines & Technology to conduct a collaborative research project on "Mechanistic Study of Mesoporous Carbon Formation from Food Waste." The goal of the 3-year project is to develop a novel 2-stage process to convert food waste into high-value mesoporous carbon materials that can be used to fabricate electrodes for...
This $735,670 Faculty Early Career Development (CAREER) award from the National Science Foundation's (NSF) Engineering program supports fundamental research to create strong, tough, and sustainable materials through new knowledge of small-scale fracture in architected materials. The research will involve developing bio-derived and/or biodegradable materials with precise microstructures using advanced manufacturing, testing their mechanical properties, and modeling crack growth and propagation in...
This $452,715 Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports the development of 3D architectures that embed porous gas adsorbent materials inside high thermal conductivity substrates. The goal is to improve thermal control and enhance gas sorption performance for applications such as air purification, carbon capture, molecular sensing, gas separations, and catalysis. The key research objectives include developing methodologies to...
The National Science Foundation (NSF) awarded a $453,682 Faculty Early Career Development (CAREER) grant to Arizona State University (ASU) to conduct fundamental research on ceramic binder jet additive manufacturing. The project, titled "CAREER: Powder Preparation and Compaction for Ceramic Binder Jet Additive Manufacturing," aims to generate new knowledge about how powder granule characteristics and compaction affect the density of ceramic parts produced through this advanced...

CAREER: MULTI-SCALE MANUFACTURING OF POROUS CARBON NANOSTRUCTURES -THIS FACULTY EARLY CAREER DEVELOPMENT PROGRAM (CAREER) AWARD SUPPORTS RESEARCH TO IMPROVE THE ABILITY TO MANUFACTURE POROUS CARBON NANOSTRUCTURES. THESE STRUCTURES CAN BE USED FOR MULTIPLE APPLICATIONS, INCLUDING ELECTRODE MATERIALS FOR DESALINATION, MEMBRANES FOR WATER TREATMENT, SOLAR CELLS, SUPERCAPACITORS, BATTERIES, AND MATERIALS FOR CARBON DIOXIDE CAPTURE. THE PROJECT AIMS TO UNDERSTAND A MANUFACTURING PROCESS IN WHICH CARBON NANOPARTICLES ARE ATTACHED TO A SCAFFOLD AND FUNCTIONALIZED, WITH PRECISE CONTROL OVER THE POROSITY OF THE RESULTING STRUCTURE. IF SUCCESSFUL, THIS RESEARCH WILL CONTRIBUTE TO PRECISION MANUFACTURING PROCESSES THAT WILL ENABLE THESE ADVANCED-MATERIAL APPLICATIONS, WHICH ARE CRITICAL TO MEETING REQUIREMENTS FOR FUTURE ENERGY AND WATER DEMANDS, AND TO ENHANCE THE COMPETITIVENESS OF THE NATION?S INDUSTRIAL BASE IN SECTORS LIKE AEROSPACE, AUTOMOTIVE AND ENERGY. THE HANDS-ON EDUCATION AND OUTREACH ACTIVITIES OF THIS PROJECT WILL CONTRIBUTE TO THE PREPARATION OF A DIVERSE ENGINEERING WORKFORCE WITH SKILLS SPECIFIC TO THE NEEDS OF THE WIDE RANGE OF INDUSTRIES THAT WILL DEPEND ON THE TECHNOLOGIES OF THESE EMERGING AREAS. WHILE POROUS CARBON STRUCTURES HAVE BEEN MANUFACTURED FOR DECADES, IT REMAINS DIFFICULT TO MANUFACTURE THESE STRUCTURES WITH PRE-SPECIFIED POROSITY. THE OBJECTIVE OF THIS RESEARCH IS TO ADDRESS THIS DEFICIENCY BY DETERMINING THE RELATIONSHIP BETWEEN THE PARAMETERS DESCRIBING THE MANUFACTURING PROCESS AND THE PORE-SIZE DISTRIBUTION OF THE RESULTING POROUS CARBON NANOSTRUCTURES. THIS RESEARCH TAKES A TWO-PRONGED APPROACH: AN EXPERIMENTAL COMPONENT DIRECTED AT EXPLORING THE RELATIONSHIP BETWEEN MANUFACTURING PARAMETERS AND PORE-SIZE DISTRIBUTION, AND A THEORETICAL COMPONENT AIMED AT OBTAINING A UNIFIED INTERPRETATION OF THE EXPERIMENTAL DATA WITH PREDICTIVE CAPABILITY. EXPERIMENTS WILL BE CONDUCTED OVER A RANGE OF FILLER MORPHOLOGIES, FILLING PARAMETERS, AND ETCHING PARAMETERS TO DETERMINE THE RESULTING PORE-SIZE DISTRIBUTIONS, WITH AN AIM OF CONTROLLING POROSITY TO WITHIN TENS OF NANOMETERS. THE EXPECTED RESULT OF THIS RESEARCH WILL BE A SET OF VALIDATED MODELS EXPLAINING THE IMPACT OF THE MANUFACTURING PARAMETERS ON THE RESULTING PORE-SIZE DISTRIBUTIONS, THUS ENABLING THE MANUFACTURE OF THE NANOSTRUCTURES SPECIFICALLY AS DESIRED, AS WELL AS TESTS VALIDATING THE PERFORMANCE OF THE POROUS STRUCTURES FOR WATER DESALINATION. THIS RESEARCH WILL PROVIDE THE GROUNDWORK FOR CONTINUED IMPROVEMENT OF HIGH-PERFORMANCE NANOSTRUCTURES AND FUTURE KINETICS STUDIES. 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.

Posted 3/11/24, 12:00 AM