Project Grant 2339911
- This STTR Phase I Project Grant, awarded by the National Science Foundation (CFDA 47.084 - NSF Technology, Innovation, and Partnerships program), provides $305,000 to Magsorbeo Biomedical Corp to develop a bioabsorbable magnesium alloy for maxillofacial fixation implants. The goal is to create a magnesium-based implant that can temporarily support healing, then gradually be absorbed by the body, eliminating the need for secondary removal surgeries. This innovation aims to improve healthcare...
- This $606,413 Project Grant from the National Science Foundation's Engineering program (CFDA 47.041) supports research at the University of Central Florida to develop a new liquid metal processing strategy called Severe Ultrasonic Melt Shearing (SUMS) for manufacturing magnesium composite implants. The goal is to refine microstructures and improve corrosion resistance to enable use of magnesium in larger orthopedic and other medical implants. The research aims to understand microstructural...
- This Project Grant award from the National Science Foundation (NSF) Division of Materials Research, under the Mathematical and Physical Sciences program (CFDA 47.049), provides $322,382 to the University of Connecticut Health Center (UCHC) from September 1, 2023 through August 31, 2026. The goals of this collaborative research project are to use computer modeling and high-energy synchrotron X-ray diffraction experiments to better understand how the incorporation of cobalt (Co) and chromium...
- This SBIR Phase I project, awarded by the National Science Foundation (NSF) under the Technology, Innovation, and Partnerships (CFDA 47.084) program, is focused on the development of a novel mammalian cell-based nano-biological coating for implantable medical devices. The goal is to address the critical health and economic burden associated with implant-related infections by reducing or eliminating them through the use of this biocompatible and antimicrobial nano-biological coating. The $305,000...
- This National Science Foundation (NSF) Division of Materials Research Project Grant, CFDA# 47.049 Mathematical and Physical Sciences, provides $400,000 in funding to The Trustees of the University of Pennsylvania to conduct collaborative research on developing novel hybrid metal-piezoelectric biomaterials for anti-infectious implantable medical devices. The key objective is to create advanced multifunctional biomaterial platforms that can effectively prevent biofilm formation and bacterial...
- This National Science Foundation (NSF) Division of Civil, Mechanical, and Manufacturing Innovation award provides $199,824 to Western Carolina University from January 1, 2024 to December 31, 2025 to conduct fundamental research on how stress-induced histomorphogenesis affects long-term leaching from implanted medical devices using phase field models. The research aims to develop computer simulations that can more accurately capture the impact of tissue changes near implanted devices on...
- Federal Project Grant Award Summary This CAREER (Faculty Early Career Development) project grant from the National Science Foundation's Division of Materials Research under the Mathematical and Physical Sciences program (CFDA 47.049) supports fundamental research in biomaterial design at Boston University. Awarded on February 15, 2026, with total obligated funding of $524,997, the five-year project (concluding January 31, 2031) will develop hybrid metal-organic framework-hydrogel biomaterials...
- This CAREER award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) funds the development of an artificial nervous system enabling in-body communication between wearable and implantable bioelectronic devices. Awarded to Georgia TECH Research Corp on June 15, 2025, with $499,896 obligated through May 31, 2030, the project addresses critical limitations in existing therapeutic systems by creating optimized emitter and receiver networks that facilitate real-time...
- This National Science Foundation Project Grant of $100,000 supports research into polyelectrolyte multilayered surfaces for use in human mesenchymal stem/stromal cell manufacturing. The goal is to develop a scalable and controllable polymeric coating composed of natural polymers to improve the cell expansion process used in producing therapeutic human mesenchymal stromal cells. The coating is constructed via layer-by-layer assembly of collagen and heparin and has been shown to increase cell...
- The National Science Foundation (NSF) awarded a $273,563 Small Business Innovation Research (SBIR) Phase I grant to Medicarbone Inc. under the NSF Technology, Innovation, and Partnerships (CFDA 47.084) program. The objective of this 12-month project is to design, develop, and demonstrate the feasibility of a minimally-invasive intramedullary (IM) sleeve system with an in situ, photocurable, and removable polymeric bone cement for the treatment of orthopedic fractures. The project aims to address...
CAREER: HYBRID SURFACE COATING TOWARD CORROSION-CONTROLLED MAGNESIUM-BASED IMPLANTS -NON-TECHNICAL SUMMARY THERE IS AN INCREASING INCIDENCE OF BONE FRACTURES IN THE UNITED STATES, WHICH IS CAUSED IN PART BY AN AGING POPULATION. THE GLOBAL MARKET FOR FRACTURE FIXATION DEVICES (E.G., MEDICAL IMPLANTS) IS EXPECTED TO REACH $13.6 BILLION BY 2027, GROWING AT A COMPOUND ANNUAL GROWTH RATE OF 6.1% OVER THAT TIME. THIS FACULTY EARLY CAREER DEVELOPMENT (CAREER) AWARD ADDRESSES A SIGNIFICANT HEALTHCARE CHALLENGE BY ENHANCING THE CLINICAL FEASIBILITY OF BIODEGRADABLE MAGNESIUM-BASED METALLIC IMPLANTS. THE UTILIZATION OF BIODEGRADABLE IMPLANTS IN BIOMEDICAL APPLICATIONS, INCLUDING VASCULAR STENTS AND SMALL BONE FIXATION DEVICES, PRESENTS AN INNOVATIVE ALTERNATIVE TO THE CURRENTLY EMPLOYED PERMANENT METALLIC IMPLANTS. THESE PERMANENT METALLIC IMPLANTS OFTEN ENTAIL SIGNIFICANT COMPLICATIONS AND MAY NECESSITATE SURGICAL INTERVENTION. ALTHOUGH BIODEGRADABLE MAGNESIUM-BASED IMPLANTS HOLD PROMISE, THEIR RAPID DEGRADATION UNDERMINES THEIR EFFICACY BEFORE THE COMPLETION OF THE HEALING PROCESS. THIS PROJECT INTRODUCES INNOVATIVE HYBRID COATINGS, COMBINING DIFFERENT COATING METHODS AND MATERIALS, TO MITIGATE DEGRADATION AND ALLOW THE CONTROLLED RELEASE OF BIOACTIVE AGENTS. BY INVESTIGATING HOW BIOACTIVE AGENTS INTERACT WITH COATED MAGNESIUM, THE PROJECT AIMS TO UNDERSTAND DEGRADATION INHIBITION MECHANISMS AND MODULATE DEGRADATION RATES. ADDITIONALLY, A COMPUTATIONAL MODEL WILL BE DEVELOPED TO PREDICT DEGRADATION AND AGENT RELEASE, BRIDGING THEORY AND EXPERIMENT. THE SIGNIFICANCE OF THIS RESEARCH LIES IN ITS POTENTIAL TO REVOLUTIONIZE PATIENT-SPECIFIC BIOMEDICAL IMPLANTS BY TAILORING THE DEGRADATION RATES AND HENCE THE LIFESPAN OF AN IMPLANT. SUCCESSFUL OUTCOMES MAY LEAD TO THE IMPROVEMENT OF A VARIETY OF IMPLANTS INCLUDING ORTHOPEDIC, FACIAL, ORAL, AND MORE, BENEFITING PATIENTS WITH PERSONALIZED NEEDS. THIS PROJECT ALIGNS WITH THE NSF'S MISSION BY ADVANCING SCIENCE, PROMOTING HEALTH, AND CONTRIBUTING TO NATIONAL WELFARE. RECOGNIZING THE UNDERREPRESENTATION OF CERTAIN GROUPS, THE PROJECT INCLUDES A COMMUNITY-BASED MENTORING PROGRAM THAT AIMS TO EXPOSE UNDERSERVED HISPANIC CHILDREN IN CHATTANOOGA AND THE SOUTHEAST TENNESSEE AREA TO STEM THROUGH HANDS-ON ACTIVITIES, FOSTERING ENGAGEMENT AND CIVIC INVOLVEMENT. THE PI ALSO PLANS TO WORK WITH THE SOCIETY OF WOMEN ENGINEERS AT THE UNIVERSITY TO INTRODUCE FEMALE HIGH SCHOOL STUDENTS TO BIOMEDICAL ENGINEERING RESEARCH, ENCOURAGING THEIR PARTICIPATION IN STEM FIELDS. MOREOVER, A GRADUATE COURSE ON MANUFACTURING OF BIOMATERIALS WILL BE DEVELOPED, ENRICHING EDUCATION AND NURTURING FUTURE PROFESSIONALS. TECHNICAL SUMMARY THIS RESEARCH PROJECT ADDRESSES THE CHALLENGE OF RAPID DEGRADATION IN MAGNESIUM-BASED BIOMEDICAL IMPLANTS, HINDERING THEIR CLINICAL IMPACT. BY EMPLOYING HYBRID COATING SYSTEMS, PARTICULARLY PLASMA ELECTROLYTIC OXIDATION (PEO) COUPLED WITH THE SOL-GEL COATING METHOD, THE PROJECT AIMS TO CONTROL DEGRADATION RATES AND ENHANCE BIOACTIVE AGENT RELEASE FOR SMART BIOMATERIALS. THIS RESEARCH PROJECT WILL ADDRESS GAPS IN UNDERSTANDING THE MECHANISMS BEHIND ENHANCED CORROSION RESISTANCE OF COATED MAGNESIUM IMPLANTS AND THE EFFECTIVE REGULATION OF BIOACTIVE AGENT RELEASE DURING PROLONGED IMPLANTATION PERIODS. TWO PRIMARY OBJECTIVES GUIDE THE INVESTIGATION: OBJECTIVE #1 FOCUSES ON UNDERSTANDING THE INTERACTION OF BIOACTIVE AGENTS WITH THE POROUS SURFACE OF PEO-COATED MAGNESIUM SUBSTRATES, ELUCIDATING THEIR ROLE AS CORROSION INHIBITORS THROUGH MICROSTRUCTURAL EVOLUTION AND ELECTROCHEMICAL CORROSION MECHANISMS. OBJECTIVE #2 INVOLVES THE DEVELOPMENT OF A VERSATILE NUMERICAL MODEL BASED ON A PHYSICAL MODELING APPROACH TO PREDICT DEGRADATION RATES AND BIOACTIVE AGENT RELEASE FROM MAGNESIUM SUBSTRATES COATED WITH HYBRID PEO-BASED AND MULTIPLE LAYERS OF HYDROXYAPATITE (HA) SOL-GEL COATINGS. ONE OUTCOME OF THE PROJECT IS THE POSSIBILITY OF DEPOSITING THIN (< 100 NM) SUBSEQUENT COATING LAYERS. THAT ENABLES THE ESTABLISHMENT OF A CLEAR RELATIONSHIP BETWEEN THE DEPOSITED COATING LAYERS AND DEGRADATION RATES. THIS UNDERSTANDING IS CRUCIAL FOR ENSURING A TIME-CERTAIN COMMENCEMENT OF THE IMPLANT?S DEGRADATION, A VITAL ASPECT FOR PATIENT-SPECIFIC IMPLANT APPLICATIONS. THE INTERDISCIPLINARY APPROACH COMBINES EXPERTISE IN BIOMATERIALS PROCESSING, CORROSION SCIENCE, AND NUMERICAL MODELING. THE ANTICIPATED OUTCOMES HOLD THE POTENTIAL TO INTEGRATE MAGNESIUM AS A BIODEGRADABLE METAL TECHNOLOGY IN CLINICAL SETTINGS, PARTICULARLY FOR PATIENT-SPECIFIC DEVICES IN ORTHOPEDIC AND CRANIOMAXILLOFACIAL APPLICATIONS. THE EDUCATIONAL OBJECTIVE OF THE PROJECT IS TO (1) DEVELOP A NEW COMMUNITY-BASED MENTORING PROGRAM FOR HISPANIC CHILDREN AGES 11 TO 18, (2) ORGANIZE TALKS, PRESENTATIONS, AND LIVE DEMONSTRATIONS AIMING AT RECRUITING MORE FEMALE RESEARCH STUDENTS, AND (3) DEVELOP A GRADUATE INTERDISCIPLINARY COURSE ON THE TOPIC OF ?MANUFACTURING OF BIOMATERIALS?. THESE EDUCATIONAL ACTIVITIES WILL OFFER STEM EXPOSURE, SOCIAL ENGAGEMENT, CAREER DEVELOPMENT, AND ADVISING, PARTICULARLY FOR HISPANIC AND FEMALE STUDENTS IN CHATTANOOGA AND THE SOUTHEAST TENNESSEE AREA. 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 | ($48k) | 3/13/26 | ||
| Not listed | $112.0k | 3/14/25 | ||
| Not listed | $104.9k | 1/9/24 |