Project Grant R01EB034659
- Federal Cooperative Agreement Summary The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded Massachusetts General Hospital a Cooperative Agreement totaling $808,070 (Award Date: August 1, 2025; Completion Date: July 31, 2030) under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286). The award supports the design and development of a comprehensive head-neck radiofrequency (RF) coil system optimized for...
- This National Science Foundation (NSF) Project Grant award to New York University (NYU) under the Computer and Information Science and Engineering program (CFDA 47.070) aims to develop an advanced software tool that automates the design and optimization of electromagnetic (EM) systems, with a focus on improving the performance of magnetic resonance imaging (MRI) devices. The $1,164,641 award, effective from August 1, 2023 to July 31, 2026, will create a software pipeline that combines geometry...
- Federal Grant Award Summary The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded University of California, Berkeley a $641,360 Project Grant effective July 1, 2025, through May 31, 2029, under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286). This award funds development and validation of a novel distributed active programmable transmit (ADAPT) coil technology designed to advance radiofrequency (RF)...
- Federal Grant Award Summary Vanderbilt University Medical Center received a $481,250 Project Grant from the National Institute of Biomedical Imaging and Bioengineering under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286). The award, effective September 1, 2025, through August 31, 2027, funds the development of an innovative radiofrequency (RF) coil array specifically designed for magnetic resonance-guided focused ultrasound (MRGFUS)...
- HYQ Research Solutions, LLC was awarded a $998,104 Cooperative Agreement from the National Science Foundation under the NSF Technology, Innovation, and Partnerships program to develop high dielectric constant materials for accelerating 1.5T magnetic resonance imaging. The two-year award will support the company's efforts to increase MRI signal-to-noise ratio by over 50% and cut scan times in half through incorporating high dielectric constant materials into clinical imaging coils. This novel...
- Federal Project Grant Award Summary The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded The Leland Stanford Junior University a $217,500 Project Grant on April 10, 2026, under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286) to develop faster Magnetic Resonance Imaging (MRI) technology through portable resonance gradient coils (RGC) with seamless calibration and reconstruction capabilities. The project,...
- This National Science Foundation (NSF) Small Business Innovation Research (SBIR) Phase I grant award of $275,000 to Adialante L.L.C. focuses on the development of techniques to facilitate the design and fabrication of affordable, compact, and patient-friendly magnetic resonance imaging (MRI) systems, particularly for pediatric applications. The project aims to innovate novel B1 imaging approaches, such as Frequency-Encoded and Phase-Encoded Frequency-Modulated Rabi-Encoded Echoes (FREE), that...
- Federal Grant Award Summary Massachusetts Institute of Technology (MIT) received a $514,357 Project Grant award from the National Institute of Biomedical Imaging and Bioengineering under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286). The award, dated June 1, 2025, with completion expected by May 31, 2029, supports the development and prototype demonstration of a portable, liquid-helium-free 1-Tesla/560-millimeter room-temperature...
- This $1,434,445.00 Project Grant award from the National Institutes of Health's Trans-NIH Research Support program (CFDA 93.310) supports the University of Southern California (USC) in developing new deep learning-based architectures, algorithms and training mechanisms to address key challenges in magnetic resonance imaging (MRI) reconstruction. The project aims to create a robust, reliable and trustworthy toolkit for reducing MRI acquisition time, enabling high-quality reconstruction with...
- This $1,336,000 Project Grant awarded by the National Institute of Biomedical Imaging and Bioengineering (NIBIB) under the CFDA 93.286 "Discovery and Applied Research for Technological Innovations to Improve Human Health" program supports the development of a rapid, motion-robust, and low-gadolinium MRI technology for pediatric brain tumors. The key objectives are to (1) develop cutting-edge technologies for rapid, motion-robust, and quantitative MRI scans to reduce sedation needs...
WIRELESS MRI WITH A STAND-ALONE, PLATFORM-INDEPENDENT WIRELESS INTEGRATED RADIO-FREQUENCY/SHIM COIL ARRAY AND CLOUD-BASED DATA PROCESSING WORKFLOW - PROJECT SUMMARY / ABSTRACT TECHNICAL ADVANCES IN MAGNETIC RESONANCE IMAGING (MRI) HAVE LED TO A WIDE RANGE OF IMAGING TECHNIQUES, CONTRAST MECHANISMS, AND CLINICAL APPLICATIONS. HOWEVER, DESPITE MARKED PROGRESS IN RADIO-FREQUENCY (RF) AND SHIM COIL TECHNOLOGIES, THE TRADITIONAL MRI SCANNER ARCHITECTURE CURRENTLY USED ON VIRTUALLY ALL SCANNERS STILL HAS MAJOR LIMITATIONS. RF COIL ARRAYS REQUIRE WIRED CONNECTIONS TO THE BULKY RECEIVER CHAIN IN THE SCANNER AND THE MACHINE ROOM VIA BULKY CABLE ASSEMBLIES, WHICH CAN RESULT IN LONG SETUP TIMES, PATIENT DISCOMFORT AND MOTION, LOWER SIGNAL-TO-NOISE RATIO (SNR) FROM CROSSTALK, LOSS OF TRANSMIT POWER FROM POWER DISSIPATION, AND RF BURNS FROM INDUCED CURRENTS. THESE ISSUES ARE FURTHER EXACERBATED WITH MODERN HIGH-CHANNEL-COUNT OR FLEXIBLE RF COIL ARRAYS. IN ADDITION, CONVENTIONAL LOW-ORDER SPHERICAL HARMONIC SHIM COILS REQUIRE WIRED CONNECTIONS TO AMPLIFIERS IN THE MACHINE ROOM AND CANNOT EFFECTIVELY SHIM LOCALIZED STATIC MAGNETIC FIELD INHOMOGENEITIES (B0) IN THE HUMAN BODY, LEAVING ARTIFACTS THAT SEVERELY DEGRADE THE IMAGE QUALITY IN MANY APPLICATIONS. WE PREVIOUSLY PROPOSED TWO COIL DESIGNS TO ADDRESS SOME OF THESE LIMITATIONS: 1) OUR NOVEL INTEGRATED RF/WIRELESS (IRFW) COIL DESIGN ENABLES MR IMAGING AND THE WIRELESS TRANSFER OF DATA FROM/TO PERIPHERAL DEVICES WITH A SINGLE COIL ARRAY FOR LOW-THROUGHPUT APPLICATIONS SUCH AS WIRELESS PHYSIOLOGICAL MONITORING, BUT NOT YET FOR THE WIRELESS TRANSFER OF MRI DATA, WHICH REQUIRES FURTHER DEVELOPMENT; 2) OUR INTEGRATED PARALLEL RECEPTION, EXCITATION, AND SHIMMING (IPRES) COIL DESIGN ENABLES MR IMAGING AND AN EFFECTIVE SHIMMING OF LOCALIZED B0 INHOMOGENEITIES WITH A SINGLE INTEGRATED RF/SHIM COIL ARRAY. HOWEVER, SUCH IRFW AND IPRES COIL ARRAYS REMAIN LIMITED BY THE BULKY WIRED CONNECTIONS AND RECEIVER CHAIN REQUIRED TO TRANSFER THE MRI DATA. OUR GOAL IS TO ADDRESS THESE LIMITATIONS BY DEVELOPING A HIGHLY INNOVATIVE WIRELESS MRI SCANNER ARCHITECTURE BASED ON A STAND-ALONE, PLATFORM-INDEPENDENT HIGH-CHANNEL-COUNT WIRELESS INTEGRATED RF/SHIM COIL ARRAY WITH ON-BOARD RECEIVED CHAIN AND CLOUD-BASED DATA PROCESSING WORKFLOW THAT WILL ENABLE WIRELESS MRI AND LOCALIZED B0 SHIMMING WITH A SINGLE COIL ARRAY. THIS PARADIGM SHIFT IN MRI SCANNER ARCHITECTURE WILL ELIMINATE ALL CABLES FROM THE COIL ARRAY AND THE BULKY RECEIVER CHAIN EMBEDDED IN THE SCANNER, THUS DRASTICALLY REDUCING THE SYSTEM COMPLEXITY, FOOTPRINT, AND COST, WHILE MAKING THE ENTIRE RECEIVER CHAIN AND DATA PROCESSING WORKFLOW (INCLUDING WITH THIRD-PARTY ADVANCED RECONSTRUCTION METHODS) COMPATIBLE WITH SCANNERS FROM DIFFERENT MANUFACTURERS, AND IMPROVING THE FREEDOM OF POSITIONING, PATIENT COMFORT, SAFETY, SNR, SPATIAL FIDELITY, IMAGE QUALITY, DIAGNOSTIC ACCURACY, AND CLINICAL UTILITY FOR A WIDE RANGE OF MRI APPLICATIONS THROUGHOUT THE HUMAN BODY. SPECIFICALLY, WE WILL DEVELOP THE TECHNOLOGY TO ENABLE THIS NOVEL WIRELESS MRI SCANNER ARCHITECTURE AND WE WILL INTEGRATE IT WITH A 48-CHANNEL WIRELESS INTEGRATED RF/SHIM HEAD/NECK COIL ARRAY TO DEMONSTRATE ITS FEASIBILITY AND ADVANTAGES FOR HUMAN BRAIN IMAGING, WHICH WILL OPEN UP EXCITING NEW AVENUES FOR MRI.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $347.5k | 4/21/26 | ||
| Not listed | $358.5k | 4/18/25 | ||
| Not listed | $397.2k | 8/1/24 | ||
| Not listed | $397.2k | 8/1/24 |