This Project Grant award from the National Science Foundation (CFDA 47.074 Biological Sciences) is for the development of a piezoelectric inchworm machine to enable automated implantation of miniaturized flexible microelectrodes into the brain for large-scale chronic neural recordings. The $499,991 award will fund the development of the inchworm insertion mechanism and its integration with a 3D-printed skull cap platform. This system aims to address the challenges of electrode buckling and...
Summary The University of Michigan received a $605,832 Cooperative Agreement from the National Institute of Neurological Disorders and Stroke under the Extramural Research Programs in the Neurosciences and Neurological Disorders program (CFDA 93.853), awarded September 15, 2025, with completion targeted for August 31, 2027. The award funds the development and clinical testing of a regenerative peripheral nerve interface (RPNI) control system designed to enable intuitive, multi-articulated...
Federal Project Grant Summary The National Institute of Neurological Disorders and Stroke (NINDS) awarded The Johns Hopkins University $616,585 on May 1, 2026, under the Extramural Research Programs in the Neurosciences and Neurological Disorders program (CFDA 93.853) to develop tools enabling brain-wide chronic electrophysiology recording in freely moving rodents. The project, spanning five years through April 30, 2031, addresses critical technical barriers associated with the emerging...
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 $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...
This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) provides $319,999 to the University of Notre Dame to develop an implantable neural interface platform with three key innovations: 1) optimized resistive RAM memory for efficient data storage, 2) programmable analog front-end circuits for high-density neural signal acquisition, and 3) specialized processors for energy-efficient computation of neural network operations. The goal is to create an...
Grant Award Summary The University of Rochester received a $346,500 Project Grant award from the National Institute of Neurological Disorders and Stroke (NINDS) under the 21st Century Cures Act—Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372), effective August 1, 2025 through July 31, 2027. This research project aims to develop and validate spatiotemporally optimized transcranial electrical stimulation (TES) techniques to selectively target cognitive...
The National Institute of Neurological Disorders and Stroke (NINDS) awarded a 3-year, $3,582,963 Project Grant under the 21st Century Cures Act - Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372) to Carnegie Mellon University (CMU). The grant supports the development and validation of novel wearable transcranial focused ultrasound (TFUS) neuromodulation transducer array probes compatible with simultaneous electrophysiological recordings in behaving...
Qualia Oto, Inc. was awarded a $233,928 Project Grant from the National Science Foundation to develop matrix-addressed, thin-film cochlear implant electrode arrays. The NSF funding supports a Small Business Technology Transfer Phase I project under the Technology, Innovation, and Partnerships program. The award will enable Qualia Oto to establish the feasibility of a novel circuit design fabricated on a thin-film platform using standard manufacturing equipment. Prototypes will undergo electrical...
Federal Cooperative Agreement Summary The University of Minnesota, through its Office of Sponsored Projects Administration, received a $1.69M Cooperative Agreement from the National Institute of Neurological Disorders and Stroke (NINDS) under the Brain Research through Advancing Innovative Neurotechnologies (BRAIN) Initiative (CFDA 93.372) awarded on June 15, 2026. The project, titled "Sleep-Driven Adaptive Neuromodulation in Lennox-Gastaut Syndrome" (ADAPT-LGS), will develop and...
DEVELOPMENT AND EVALUATION OF NOVEL HIGH-DENSITY INTRACORTICAL MICROELECTRODE ARRAYS FOR CLINICAL APPLICATIONS - PROJECT SUMMARY PARADROMICS IS DEVELOPING HIGH DATA RATE BRAIN COMPUTER INTERFACE TECHNOLOGIES AS A PLATFORM FOR MEDICAL DEVICE APPLICATIONS. IN OUR PHASE I SBIR, WE DESIGNED, BUILT, AND TESTED A NEURAL RECORDING SYSTEM BASED ON MASSIVELY PARALLEL MICROWIRE ELECTRODE ARRAYS BONDED TO CMOS READOUT ELECTRONICS. THAT SYSTEM SUPPORTS UP TO 65,536 ACTIVE ELECTRODE CHANNELS SAMPLED SIMULTANEOUSLY AT OVER 32,000 HZ. WE USED THIS SYSTEM TO RECORD ACTION POTENTIALS FROM ARRAYS OF UP TO 1200 MICROELECTRODES IN RATS (PENETRATING, 1MM DEPTH) AND LOCAL FIELD POTENTIALS FROM >30,000 MICROELECTRODES IN SHEEP (SURFACE). THIS SERVES AS A DEMONSTRATION OF THE MICROWIRE- TO-CMOS BONDING ARCHITECTURE THAT WILL FORM THE CORE OF OUR NEXT DEVICE, A MEDICAL IMPLANT. FOR THIS NEW IMPLANTABLE MEDICAL DEVICE, WE HAVE DEVELOPED A NEW AND SUBSTANTIALLY IMPROVED METHOD OF ELECTRODE ARRAY FABRICATION. THIS METHOD PRODUCES MORE ORDERED, REGULAR ARRAYS THROUGH ELECTRICAL DISCHARGE MACHINING (EDM), THUS IMPROVING ON THE STOCHASTIC CONNECTIONS OF THE BUNDLE ARCHITECTURE FROM PHASE I WITH THE ABILITY TO BE PRODUCED UNDER GMP. A NEW, CUSTOM CMOS SENSOR, ALSO DEVELOPED FOLLOWING THE NIH SBIR PHASE I EFFORT, PERFORMS COMPRESSIVE SENSING OF NEURAL DATA TO REDUCE POWER AND DATA REQUIREMENTS IN THE FUTURE DEVICE. AS WE PREPARE TO BUILD THIS IMPLANTABLE MEDICAL DEVICE AND TAKE IT TO MARKET, IT IS CRITICAL TO EXTENSIVELY TEST THE INSERTION RELIABILITY OF DIFFERENT ARRAYS DESIGNS IN ORDER TO PRODUCE A DEVICE BEST OPTIMIZED FOR INSERTION AND RECORDING. HERE WE PROPOSE TO USE PASSIVE ARRAYS OF 400-1600 ELECTRODES, SMALLER THAN OUR PHASE I APPROACH, TO FIND THE OPTIMAL ELECTRODE ARRAY DESIGN FOR CLINICAL TRANSLATION. WE WILL TEST ARRAY DESIGNS THAT CAN RELIABLY INSERT INTO THE SHEEP CORTEX, VALIDATE THE INSERTION OF THAT ARRAY IN HUMAN TISSUE INTRAOPERATIVELY (UNDER IRB), AND EVALUATE THE TISSUE RESPONSE TO THE ARRAY OVER A PERIOD OF UP TO 6 MONTHS, IMPLANTED CHRONICALLY IN SHEEP. THE OVERALL GOAL FOR THE FUTURE ARRAY IS TO ENSURE THAT WE CAN RELIABLY INSERT THE ARRAY WITH THE SMALLEST SHANK WIDTH TO MITIGATE THE CHRONIC FOREIGN BODY RESPONSE AT AN APPROPRIATE PITCH (100 - 400 MM) AND LENGTH (I.E. 1 MM) SUITABLE FOR THE HUMAN CORTEX. MOREOVER, THIS DATA WILL ALSO BE CRITICAL FOR DESIGNING CERTIFIED GLP STUDIES, AND FOR PLANNING CONVERSATIONS WITH THE FDA FOR PRE-IDE MEETINGS, WHERE WE WILL NEED A FINALIZED ARRAY DESIGN AND TESTING PLAN IN PLACE. THE AIMS OF THIS DIRECT TO PHASE II STUDY ARE AS FOLLOWS: SPECIFIC AIM (SA) 1: DETERMINE OPTIMAL MICROELECTRODE ARRAY DESIGN AND VALIDATE IMPLANTATION IN SHEEP AND HUMAN CORTICAL TISSUE INTRAOPERATIVELY WITH PASSIVE ARRAYS OF 400-1600 ELECTRODES. WE AIM TO BETTER UNDERSTAND HOW THE GEOMETRIC PARAMETERS OF HIGH DENSITY MICROWIRE ELECTRODE ARRAYS IMPACT INSERTION RELIABILITY INTO CORTICAL TISSUE IN VIVO IN AN OVINE (SHEEP) MODEL (SA 1.1), WITH REFINED GEOMETRIES IMPLANTED INTRAOPERATIVELY INTO HUMAN CORTEX (SA 1.2). SPECIFIC AIM 2: DETERMINE LONG-TERM VIABILITY OF IMPLANTED, PASSIVE ARRAYS IN SHEEP. . WE WILL DETERMINE THE LONG-TERM VIABILITY OF OUR HIGH-DENSITY ARRAY BY CHRONICALLY IMPLANTING THE PASSIVE ARRAYS IN SHEEP. ANIMALS WILL BE IMPLANTED OVER 4, 8, 12, AND 24 WEEKS. THE DEGREE OF GLIAL SCARRING AND NEURON LOSS WILL BE COMPARED AROUND ELECTRODES BETWEEN HIGH-DENSITY AND COMMERCIAL ARRAYS OVER THESE TIMEPOINTS.