Project Grant R41GM145129
- The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded a $305,000 Project Grant (CFDA 93.286 - Discovery and Applied Research for Technological Innovations to Improve Human Health) to Odmr Technologies, Inc. to develop a miniature diamond quantum sensor for magnetoencephalography (MEG). The key objectives are to: 1) Build a miniature flux-concentrator diamond sensor with infrared absorption detection, and 2) Demonstrate a sensitivity of ~10 femtotesla for 1 second...
- This federal Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program provides $480,000 to the University of Southern California (USC) to develop novel nuclear magnetic resonance (NMR) spectroscopy techniques using quantum sensing technology. Specifically, the USC research team led by Susumu Takahashi is creating new approaches to high-field NMR spectroscopy that leverage nitrogen-vacancy (NV) centers in diamond to dramatically...
- This two-year, $250,000 Project Grant from the National Science Foundation's Engineering program (CFDA 47.041) funds the development of a new high-throughput chemical analysis system for applications such as pharmaceutical drug discovery. The University of California, Berkeley will advance a benchtop nuclear magnetic resonance (NMR) spectroscopy device capable of performing measurements on multiple samples simultaneously at throughput rates 50-100 times greater than current technologies. The...
- Professor Ramanathan's group at Dartmouth College was awarded a $772,936 Project Grant from the National Science Foundation's Mathematical and Physical Sciences program to develop methods for improving the sensitivity of nuclear magnetic resonance spectroscopy. The group will work to enhance dynamic nuclear polarization signals through the use of substitutional nitrogen impurity centers in diamond, with the goals of enabling NMR studies of smaller sample volumes at the nano and microscale....
- This Cooperative Agreement award from the National Institute of Standards and Technology (NIST) under the Science, Technology, Business and/or Education Outreach program (CFDA 11.620) provides $100,000 in funding to Femtosenselabs, LLC to fabricate diamond with aligned nitrogen-vacancy (NV) centers, which are spin qubits used for magnetometry. The goal is to develop ultra-sensitive magnetic field sensors that can have immediate impact on applications such as medical imaging, navigation, and...
- This $2,000,000 Project Grant award from the National Institutes of Health (NIH) Office of Research Infrastructure Programs (CFDA 93.351) will enable Northwestern University to acquire a Bruker ASCEND 800 MHz nuclear magnetic resonance (NMR) spectrometer with cryoprobe. The new high-field NMR instrument will be housed in the university's Integrated Molecular Structure Education and Research Center (IMSERC) and made available to a diverse group of 12 NIH-funded researchers conducting biomedical...
- The National Science Foundation's (NSF) Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049) awarded a $560,015 project grant to New York University (NYU) to advance the development of zero- and ultralow-field (ZULF) nuclear magnetic resonance (NMR) spectroscopy. This cutting-edge chemical analysis technique provides detailed insights while operating in low magnetic fields, making it portable and cost-effective compared to traditional NMR. The project aims to improve the...
- This Project Grant award for $298,000, provided by the National Science Foundation (NSF) Division of Chemistry under the Mathematical and Physical Sciences (CFDA 47.049) program, supports collaborative research between professors at Southern Illinois University Carbondale and Wayne State University. The project aims to improve the sensitivity of nuclear magnetic resonance (NMR) and magnetic resonance imaging (MRI) through the development of new, cost-effective means of enhancing nuclear...
- This $274,786 Phase I Small Business Innovation Research (SBIR) award from the National Science Foundation's (NSF) Technology, Innovation, and Partnerships (TIP) program (CFDA 47.084) will fund the development of a cutting-edge scanning magnetometer microscope by Femtosenselabs, LLC. This new microscope technology will enable high-resolution imaging of novel magnetic materials with unprecedented sensitivity at the nanoscale, supporting the advancement of spintronics and the development of...
- This Project Grant award from the National Institute of General Medical Sciences (NIGMS) under the Biomedical Research and Research Training program (CFDA 93.859) provides $306,675 to Doty Scientific Inc. to develop innovative low-loss bi-directional terahertz (THz) couplers. These couplers are critical components for enabling affordable high-field magic angle spinning dynamic nuclear polarization (MAS-DNP) nuclear magnetic resonance (NMR) systems, which are crucial for advancing structural...
DIAMOND NMR SPECTROMETER FOR MICROFLUIDIC METABOLITE PROFILING - PROJECT SUMMARY. NUCLEAR MAGNETIC RESONANCE (NMR) IS AMONG THE MOST POWERFUL ANALYTICAL TECHNIQUES EVER INVENTED, AS RECOGNIZED BY 6 NOBEL PRIZES FOR METHODS DEVELOPMENT ALONE. NONETHELESS, NMR IS NOTORIOUSLY PLAGUED BY POOR SENSITIVITY. STATE-OF-THE-ART NMR SPECTROMETERS FEATURE DETECTION THRESHOLDS OF ~1 NANOMOLE FOR ML SAMPLE VOLUMES (~100 NANOGRAMS). THIS PLACES NMR SENSITIVITY MANY ORDERS OF MAGNITUDE BEHIND OTHER ANALYTICAL CHEMISTRY TECHNIQUES SUCH AS MASS SPECTROMETRY, RAMAN SPECTROSCOPY, AND FLUORESCENCE LABELING. IMPROVEMENTS IN NMR OFTEN FOCUS ON USING LARGER MAGNETS, BUT PROGRESS HAS PLATEAUED; OVER THE LAST 25 YEARS, THE FUNDAMENTAL SIGNAL STRENGTH HAS ONLY INCREASED ~2-FOLD. WE SEEK TO FUNDAMENTALLY CHANGE THE NMR HARDWARE BY USING DIAMOND FILMS DOPED WITH NITROGEN-VACANCY CENTERS TO DETECT NUCLEAR MAGNETIZATION NON-INDUCTIVELY VIA PULSED OPTICALLY DETECTED MAGNETIC RESONANCE METHODS. THE FORM FACTOR OF OUR NMR DETECTOR IS EASILY INTEGRATED WITH HYPHENATION TECHNIQUES SO THAT SAMPLES CAN BE SEPARATED INTO SUB-COMPONENTS BEFORE ANALYSIS. RECENTLY, WE BUILT A TABLETOP MICROFLUIDIC DIAMOND NMR APPARATUS WITH 40 PL DETECTION VOLUME AND USED IT IN PROOF-OF-PRINCIPLE ANALYTICAL CHEMISTRY APPLICATIONS INCLUDING THE FIRST 2D NMR SPECTRA ACQUIRED BY A DIAMOND NMR SENSOR. IN PHASE I, WE WILL OPTIMIZE SENSOR SPECTRAL RESOLUTION AND SENSITIVITY AND VALIDATE ITS OPERATION USING METABOLITE MIXTURES. THIS WORK WILL PLACE US IN THE POSITION TO DELIVER OUR DEVICES TO END-USERS IN INDUSTRY (MERCK) AND ACADEMIA (UW) AND INCORPORATE FEEDBACK TO SCALE UP TO MARKET. IF SUCCESSFUL, OUR PROTOTYPE COULD HAVE A PROFOUND IMPACT ON ANALYTIC BIOCHEMISTRY RESEARCH, BY COMBINING MASS-SPECTROMETRY-LEVEL SENSITIVITY WITH NMR-LEVEL ACCURACY. SPECIFICALLY, WE IMPROVE UPON EXISTING ANALYTICAL METHODS BY OFFERING: 1. GREATER PERFORMANCE. WE OFFER 1000-FOLD BETTER SENSITIVITY (PMOL INSTEAD OF NMOL) THAN CURRENT NMR SPECTROMETERS. THIS SENSITIVITY APPROACHES THAT OF MASS SPECTROMETRY BUT RETAINS BENEFITS OF NMR SUCH AS NON-DESTRUCTIVE, ABSOLUTE QUANTITATION AND STRUCTURAL IDENTIFICATION. 2. COMPATIBILITY WITH HYPHENATED SEPARATION TECHNIQUES. OUR SPECTROMETER IS COMPACT AND EASILY INTEGRATED INTO MICROFLUIDIC CHIPS FOR ONLINE CHROMATOGRAPHY-BASED ASSAYS (HPLC) FOR SAMPLE-LIMITED ANALYSES (METABOLOMICS, PHARMACODYNAMICS, NATURAL PRODUCTS). 3. LOWER COST. THE SMALL SAMPLE VOLUME IN OUR SPECTROMETER LEADS TO REDUCED ENGINEERING COSTS, LEADING TO GREATER AFFORDABILITY COMPARED TO CURRENT NMR SPECTROMETERS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 5/13/24 | ||
| Not listed | $259.0k | 9/16/21 | ||
| Not listed | $259.0k | 9/16/21 |