Project Grant 2403100
- This $600,000 Project Grant from the National Science Foundation's Computer and Information Science and Engineering program will fund research at the University of Texas at Austin to develop DNA-based storage and computation techniques. Specifically, the award supports the creation of a "SIMD-DNA" paradigm that uses strand displacement reactions to manipulate digital data encoded in the topological structure of DNA. This approach aims to enable parallel, in-memory computation without...
- This three-year, $930,252 Project Grant from the National Science Foundation's Division of Computing and Communication Foundations, under the Computer and Information Science and Engineering program, will support research exploring applications of digital microfluidic technology for DNA storage, computation, and synthetic biology. A team from the University of Minnesota will leverage an electronic platform developed by industrial partner Seagate to manipulate droplets and assemble DNA at...
- This $100,000 two-year Project Grant from the National Science Foundation's Office of Emerging Frontiers and Multidisciplinary Activities, under the Engineering (47.041) program, will support research at Boise State University to develop a co-design model integrating DNA nanotechnology and two-dimensional materials for advanced semiconductor manufacturing and workforce development. Specifically, the University will design DNA nanostructure templates for atomic precision patterning and doping...
- This Project Grant award from the National Science Foundation (CFDA 47.041 - Engineering) totaling $1,400,000 aims to advance the manufacturing of ultra-high-density, DNA-enabled nanoelectronics systems. The key goals are to: Develop scalable methods for obtaining high-purity carbon nanotubes, self-aligned single-molecule junctions, and hybrid DNA nanostructures. Establish reliable processes for integrating bottom-up and top-down architectures using field-driven directed assembly and...
- The National Science Foundation awarded $375,000 under the Mathematical and Physical Sciences program (CFDA 47.049) to Boise State University for the project "SEMISYNBIO-III: Scalable Nucleic Acid Memory." The three-year project aims to advance DNA-based information storage through algorithms, imaging, and synthetic biology techniques. Specifically, the university will develop rotation-invariant data encoding and error correction, deep learning for image processing, and Bayes-optimal...
- This $300,000 Project Grant from the National Science Foundation's Division of Computer and Network Systems, under the Computer and Information Science and Engineering program (CFDA 47.070), will support research to develop efficient ways to enlarge practical DNA storage capacity by integrating bio-computer technologies. Led by researchers at the University of Minnesota, the interdisciplinary team will investigate approaches to improve the scalability of DNA storage, including identifying more...
- This $375,000 project grant from the National Science Foundation's Division of Computing and Communication Foundations, under the Computer and Information Science and Engineering program (CFDA 47.070), will support the development of hybrid cell-semiconducting polymer systems for high-density biological data storage at William Marsh Rice University. Over the two-year period from August 2022 to July 2025, the university researchers will work to encode 100 bytes of information into synthetic RNA...
- This Project Grant award of $250,000 from the National Science Foundation's Biological Sciences (CFDA 47.074) program supports research at the Massachusetts Institute of Technology (MIT) to develop a novel, sustainable manufacturing framework using DNA for fabricating quantum devices. The key products of this 2-year project (5/1/2025 - 4/30/2027) are the establishment of a DNA-based, energy-efficient manufacturing approach to precisely position quantum materials on silicon chips. This innovative...
- The National Science Foundation (NSF) awarded a $283,362 Project Grant under the Computer and Information Science and Engineering (CISE) program to the University of Texas at Dallas (UTD) to develop innovative approaches for expanding the practical capacity of synthetic DNA storage. The project aims to address key technical challenges that currently limit the scalability of DNA-based archival storage, which has the potential to preserve the growing volume of digital data worldwide for hundreds...
- This Project Grant from the National Science Foundation's Division of Computing and Communication Foundations, under the Computer and Information Science and Engineering program (CFDA 47.070), provides $1,200,000 to the University of California, San Diego from August 1, 2022 to July 31, 2026. The award supports research into developing new coding techniques to enable DNA-based data storage. Specific objectives include establishing theoretical limits on DNA storage capacity and efficiency,...
FET MEDIUM: NEXT-GENERATION DNA-BASED COMPUTING AND MEMORY MATERIALS -CONVENTIONAL SILICON-BASED COMPUTING AND DATA STORAGE MEDIA HAVE LARGELY PLATEAUED IN THEIR ARC OF ADVANCEMENT OVER THE PAST DECADES, USHERING IN THE ENDS OF COMMONLY KNOWN MOORE?S AND KRYDER?S LAWS. RADICALLY NEW TECHNOLOGICAL APPROACHES ARE THEREFORE NEEDED TO SUSTAIN RAPID ADVANCES IN COMPUTING AND DATA STORAGE CAPABILITIES ACROSS DOMAINS OF SCIENCE AND TECHNOLOGY RANGING FROM FINANCIAL MODELING TO BIOINFORMATICS, DRUG DISCOVERY, AND DATA STORAGE AND ENCRYPTION. THE AWARDED MOLECULAR MEMORY AND COMPUTING FRAMEWORK BASED ON PROGRAMMABLE BIOLOGICAL DEOXYRIBONUCLEIC (DNA) MOLECULES OFFERS AN INNOVATIVE, SCALABLE APPROACH TO OVERCOME FUNDAMENTAL LIMITATIONS OF CURRENT STATE-OF-THE-ART COMPUTING AND DATA STORAGE APPROACHES. INDIVIDUAL NANOMETER-SCALE DNA TEMPLATES ARE INVESTIGATED TO TEST THE LIMITS OF THEIR DATA STORAGE AND COMPUTING CAPABILITIES. UNIQUE SPATIAL POSITIONING OF DNA DATA STORES AND COMPUTE NODES ARE PATTERNED ACROSS LARGE-SCALE WAFERS TO FACILITATE RAPID READ-OUT, AS WELL AS ENABLE INTERFACING WITH CONVENTIONAL ELECTRONIC AND OPTICAL DATA STORAGE AND COMPUTING MEDIA. FUNDAMENTAL QUESTIONS INCLUDE THE DENSITY OF DATA THAT CAN BE REALIZED WITHIN INDIVIDUAL DNA OBJECTS AND THEIR COLLECTIONS ON-SURFACE, THE FIDELITY OF DATA STORAGE/READ-OUT AND COMPUTING THAT CAN BE REALIZED, AND THE PARALLELIZATION OF THIS STORAGE AND COMPUTING FOR EVENTUAL TWO-DIMENSIONAL (2D) DEVICE APPLICATIONS TO OPTICAL COMPUTING AND DATA STORAGE. THIS BIOLOGICAL COMPUTING PLATFORM FABRICATED USING DNA WILL ENGAGE STUDENTS FROM DISPARATE FIELDS AND DISCIPLINES THAT ARE TYPICALLY ISOLATED, INCLUDING COMPUTER SCIENCE, BIOLOGICAL ENGINEERING, MATERIALS SCIENCE, AND NANOTECHNOLOGY. UNDER-REPRESENTED GROUPS IN THESE DISCIPLINES INCLUDING WOMEN WILL BE ENGAGED ON CAMPUS AND THROUGH SUMMER PROGRAMS TO MENTOR THEM TOWARDS GRADUATE AND POST-GRADUATE CAREERS. THIS PROJECT WILL THEREFORE HELP TRAIN STUDENTS FOR THE NEXT-GENERATION WORKFORCE ENABLING A TRANSITION TO THE BIOECONOMY, WITH SUSTAINABLE MATERIALS ENGINEERING FOR NEXT-GENERATION COMPUTATIONAL AND DATA STORAGE DEVICES. WHEREAS DNA CONVENTIONALLY STORES GENETIC INFORMATION BIOLOGICALLY, IT ALSO OFFERS NANOSCALE PATTERNING AND CONTROL OVER MATERIALS FOR ALTERNATIVE DATA STORAGE AND COMPUTING APPROACHES. MOLECULAR COMPUTING AS A FIELD HAS HARNESSED THIS SEQUENCE-CONTROLLED, INFORMATION CONTAINING PROPERTY OF DNA TO PERFORM INTRICATE ALGORITHMIC OPERATIONS AND EFFICIENT DATA STORAGE AND RETRIEVAL. HOWEVER, THESE SYSTEMS GENERALLY OPERATE IN SOLUTION AND ARE LARGELY INCOMPATIBLE WITH SURFACE-BASED OPTICAL AND ELECTRONIC STORAGE AND COMPUTING MEDIA. IN THE PRESENT PROJECT, NANOMETER-SCALE DNA ORIGAMI ASSEMBLIES ARE PATTERNED ON 2D SILICON SURFACES TO ?DISPLAY? DATA IN A CHIP-LIKE FORMAT. BY LEVERAGING THE FUNCTIONALITY OF DNA ORIGAMI TEMPLATES, FLUORESCENT BARCODES AND PARTICLES ARE DISPLAYED ON THE STRUCTURE TO PROVIDE OPTICAL READOUT THAT CAN BE PARALLELIZED ACROSS LARGE MICRON-TO-MILLIMETER SCALE SUBSTRATES. LITHOGRAPHY IS USED TO PATTERN DNA ORIGAMI ACROSS THE SUBSTRATE WITH SPATIAL AND ORIENTATIONAL CONTROL, AND METHODS TO UNIQUELY IDENTIFY EACH ORIGAMI ARE EXPLORED TO ENABLE THEIR USE AS INDIVIDUAL DATA STORAGE AND COMPUTING UNITS. DISTINCT DNA ORIGAMI TEMPLATE SHAPES WITH LITHOGRAPHICALLY PATTERNED MATCHING SHAPES ENABLE HETEROGENEOUS PLACEMENT ON-SURFACE, WITH PARALLEL IMAGING OFFERING UNIQUE IDENTIFICATION OF ORIGAMI OBJECTS ON THE WAFER-SCALE. NANOPARTICLE PLACEMENT ON ORIGAMI UNITS OFFERS ENCODING OF UNIQUE DATA STORES ON EACH DNA ORIGAMI TEMPLATE. INCORPORATION OF MOLECULAR QUBITS ON THESE STRUCTURAL DNA ORIGAMI TEMPLATES OFFERS OPTICALLY BASED COMPUTING USING QUANTUM GATES IN A PARALLEL MANNER THAT MAY IN PRINCIPLE OPERATE AT ROOM TEMPERATURE. ALTOGETHER, TRANSFORMATIVE APPROACHES TO ON-SURFACE DATA STORAGE AND COMPUTING ARE EXPLORED THAT OFFER NEW STRATEGIES TO OVERCOME CURRENT LIMITATIONS OF CONVENTIONAL DATA STORAGE AND COMPUTING MEDIA. 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 | $350.0k | 9/15/25 | ||
| Not listed | $350.0k | 6/2/25 | ||
| Not listed | $300.0k | 6/25/24 |