Project Grant 2517845
- This National Science Foundation (NSF) Engineering Program (CFDA 47.041) $550,000 CAREER grant award to New York University (NYU) aims to develop innovative wireless neural interface systems that can enable high-resolution neural recording, wireless power transfer, and high-bandwidth communication. The project, titled "NEUROTAP: Chip-Scale High-Resolution Neural Recording with Wireless Communication and Powering", seeks to tackle key challenges in scalable brain-machine interface...
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) to Georgia TECH Research Corp provides $499,896.00 to develop an artificial nervous system for communication between wearable and implantable biomedical devices. The project aims to optimize emitter and receiver networks to enable coordination of sensors and therapeutic actuators throughout the body, with potential applications in areas like sciatic nerve stimulation and controlled drug...
- This $450,000 Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) to The Johns Hopkins University supports the development of a new "dual-series gate" organic electrochemical transistor (DS-OECT) biosensor technology. The key objectives include material synthesis, device fabrication, computer modeling, and biological fluid analysis to create a highly sensitive and stable sensor capable of reliably detecting protein biomarkers for various...
- This Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) provides $540,458 to Louisiana Tech University to develop an advanced implantable neural interface device. The device is designed to simultaneously monitor multiple types of brain signals, including both chemical (neurotransmitter) and electrical (electrophysiological) activity, over extended periods in vivo. By integrating advanced materials with innovative fabrication techniques, the project...
- This NSF Engineering program Project Grant award to Brown University, totaling $383,560, will support the development of a large-scale wireless network of microchip sensors for monitoring physiological signals and brain activity. The overarching goal is to create an "all-in-one" approach to build a wireless network of thousands of sub-millimeter size sensors that can efficiently transmit and decode sparse event-driven signals, taking inspiration from the brain's neural activity. The...
- This NSF Engineering Program award of $605,320 to North Carolina State University (NC State) supports the development of a flexible, FMRI-compatible neural probe with multi-modal sensing and modulation capabilities. The novel probe is designed to advance understanding of neural circuit dynamics and enable closed-loop neuromodulation for treating neurological disorders. Key product elements include: Flexible, multi-shank neural probe fabricated using polymeric materials to enable deep brain...
- This Project Grant award, funded by the National Science Foundation's Engineering program (CFDA 47.041), supports the development of a novel non-surgical bioelectronic brain implant technology. The $599,918 award to the Massachusetts Institute of Technology (MIT) aims to create intravenously-introduced bioelectronic devices that can autonomously implant in target brain regions without the need for invasive surgery. The proposed technology promises to enable high-resolution brain stimulation...
- This $214,408 Project Grant award from the National Institute of Biomedical Imaging and Bioengineering (NIBIB), under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286), aims to significantly advance the manufacturing processes used to produce implantable thin-film neural interfaces based on liquid crystal polymers (LCP). The key products and services to be delivered include: Developing a microfabrication process to produce bonded...
- This $275,000 project grant from the National Science Foundation's Engineering Directorate (CFDA 47.041) will fund the development of novel electronic-photonic silicon carbide neural probes for recording and stimulating neural activity. The Georgia Tech Research Corporation will receive funding on behalf of collaborating researchers to design penetrating neural probes made entirely of silicon carbide, a robust material proven to withstand the corrosive brain environment long-term. The probes...
- The National Science Foundation awarded Boise State University a $199,999 project grant under the Engineering program (CFDA 47.041) to develop microscale neural implants for closed-loop neuromodulation from March 2022 through February 2024. The university will advance bioelectronic medicine miniaturization to enable simultaneous neural sensing and stimulation for personalized closed-loop therapy. Key activities include developing a cross-domain simulation framework to optimize microscale...
CAREER: SOFT, BIOCOMPATIBLE ION-BASED TRANSISTORS FOR RESPONSIVE NEUROELECTRONIC DEVICES -BIOELECTRONIC DEVICES HAVE NUMEROUS POTENTIAL BENEFITS TO HUMAN HEALTH, FROM IN-HOME WELLNESS MONITORING TO DIAGNOSIS AND TREATMENT OF NEUROPSYCHIATRIC DISEASES. HOWEVER, SAFE AND EFFECTIVE USE OF THESE DEVICES IS LIMITED BY THE RIGID, NON-BIOCOMPATIBLE ELECTRONIC COMPONENTS THAT MUST BE INCORPORATED TO ALLOW EXECUTION OF THE REQUIRED FUNCTIONS. THIS PROJECT SEEKS TO STUDY HOW SOFT AND FULLY BIOCOMPATIBLE MATERIALS CAN BE LEVERAGED TO INTERACT DIRECTLY WITH SIGNALS FROM THE BODY WITHOUT DAMAGING TISSUE. A TRANSISTOR FABRICATED FROM THESE MATERIALS WILL BE USED TO CREATE THE CIRCUITS NECESSARY FOR BIOELECTRONIC DEVICES TO ACQUIRE AND MODULATE THE ACTIVITY OF NEURONS IN THE BRAIN. THE OUTCOME OF THE RESEARCH WILL BENEFIT SOCIETY BY IMPROVING THE DESIGN OF BIOELECTRONIC DEVICES CURRENTLY USED FOR PATIENTS WITH CONDITIONS SUCH AS EPILEPSY OR PARKINSON'S DISEASE BY ELIMINATING THE NEED FOR IMPLANTATION OF BULKY OR RIGID MATERIALS IN THE BODY. THIS PROJECT WILL ALSO FACILITATE UNDERSTANDING OF THE PRINCIPLES UNDERLYING INTERACTIONS BETWEEN THE BODY AND ELECTRONIC DEVICES. THE EDUCATIONAL COMPONENT OF THIS PROJECT LEVERAGES ION-GATED TRANSISTORS AS BIOCOMPATIBLE AND LOW-COST COMPONENTS TO BE USED IN STUDENT AND EDUCATOR PROJECTS THAT TEACH PRINCIPLES OF BIOELECTRONIC DEVICE DESIGN. THESE PROJECTS WILL BE MAINTAINED IN A COMPREHENSIVE DATABASE TO FACILITATE DISSEMINATION TO EDUCATORS AND OUTREACH COORDINATORS, PROVIDING EVIDENCE-BASED METHODS TO IMPROVE PROJECT-BASED LEARNING IN BIOELECTRONICS MORE BROADLY. THE EDUCATIONAL OBJECTIVES OF THE PROJECT ARE TO PROVIDE STUDENTS AND EDUCATORS WITH HANDS-ON OPPORTUNITIES TO DESIGN AND TEST SIMPLE, BIOCOMPATIBLE BIOELECTRONIC DEVICES. THESE EFFORTS WILL INCREASE EXPOSURE TO ENGINEERING METHODS IN SCHOOLS AND STIMULATE INTEREST IN BIOELECTRONICS TO BENEFIT HEALTH. THERE IS AN ENORMOUS NEED TO DEVELOP BIOELECTRONIC COMPONENTS THAT CAN MERGE BIOCOMPATIBILITY, ION TRANSDUCTION, HIGH SPEED, AND RELIABLE OPERATION IN PHYSIOLOGICAL ENVIRONMENTS. THE OBJECTIVE OF THE PROJECT IS TO DEVELOP ION-DRIVEN, CONFORMABLE, IMPLANTABLE BIOELECTRONIC DEVICES TO ENABLE EFFICIENT INTERACTION WITH NEURAL CIRCUITS. THE CENTRAL HYPOTHESIS IS THAT ION-GATED TRANSISTORS WILL EFFECTIVELY INTERACT WITH NEURAL SIGNALS BECAUSE THEY CAN DIRECTLY TRANSDUCE THE BRAIN'S IONIC FLUX, AND ARE SUFFICIENT TO CREATE THE INTEGRATED CIRCUITS REQUIRED FOR FULLY IMPLANTABLE, SOFT, CLOSED-LOOP DEVICES THAT DO NOT REQUIRE RIGID ENCAPSULATION. THE RESEARCH INVOLVES FABRICATION OF INTEGRATED CIRCUITS COMPRISED OF ION-GATED TRANSISTORS WITH COMPREHENSIVE IN VITRO AND MODELING-BASED CHARACTERIZATION OF THE PARAMETERS GOVERNING THEIR OPERATION IN PHYSIOLOGIC ENVIRONMENTS. THESE DEVICES ARE THEN USED TO MODULATE NEURAL NETWORKS IN AN IN VIVO ANIMAL MODEL OF EPILEPSY AND ACQUIRE NEUROPHYSIOLOGIC DATA FROM HUMAN SUBJECTS. THE RATIONALE UNDERLYING THIS RESEARCH IS THAT REALIZATION OF SUCH DEVICES WILL TRANSFORM DESIGN OF BIOELECTRONIC DEVICES WITH THE POTENTIAL TO ENHANCE DIAGNOSIS AND THERAPY FOR NEUROPSYCHIATRIC DISEASE. 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 | $129.2k | 2/4/25 |