Project Grant 2530406
- This Project Grant award from the National Science Foundation (NSF) under the NSF Technology, Innovation, and Partnerships (CFDA 47.084) program will support the development of high-efficiency, high-throughput photonic-electronic hybrid processors. The $180,000 award to the University of California, Berkeley will leverage wafer-scale heterogeneous integration of thin-film lithium niobate and silicon photonics/electronics to create computing circuits that can perform massive parallel tensor...
- This federal Project Grant award from the National Science Foundation (CFDA 47.084 - NSF Technology, Innovation, and Partnerships) provides $180,000.00 to Baylor University to develop energy-efficient silicon photonic circuits with co-designed electronic application-specific integrated circuits (ASICs). The key products and services to be delivered include: Designing and fabricating a wavelength division multiplexing photonic transceiver consisting of silicon microring modulators, tunable...
- This $500,000 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) will support research at The Washington University in St. Louis to develop a heterogeneous photonic integration platform. The key technical objectives are to: Enable the van der Waals integration of dissimilar functional nanomembranes, including barium titanate, gallium nitride, and cobalt ferrite, onto silicon and silicon nitride photonic circuits. This will allow the creation of...
- The National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems awarded a $400,000 Project Grant to the Texas A&M Engineering Experiment Station (Tees) under the NSF Engineering program (CFDA 47.041). The goal of the 3-year project is to develop an energy-efficient coherent optical interconnect architecture that can enable dramatic increases in datacenter and high-performance computing bandwidth-density and energy-efficiency. The key technical innovations...
- This Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) will provide $547,117 to Trustees of Tufts College from July 1, 2025 to June 30, 2030. The project aims to develop a platform for scalable, nanoscale wavefront shaping using multimode photonic integrated circuits (PICs). This will enable the use of light in the visible wavelength range for optical interfaces and control of information from cells, atoms, and ions. The research will address challenges...
- This $250,000 Project Grant award from the National Science Foundation's (NSF) Computer and Information Science and Engineering (CFDA 47.070) program will support collaborative research to transform integrated electro-photonic fabrics for light-speed communication and computation. The goal is to develop efficient electro-photonic computing platforms that surpass traditional electronic platforms in performance, energy-efficiency, and reliability. This research aims to establish a new ecosystem...
- This $350,000 Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) supports the "COLLABORATIVE RESEARCH: ASCENT: HETEROGENEOUSLY INTEGRATED ELECTRONIC PHOTONIC AI ACCELERATORS (HIEPAA)" project led by the University of California, San Diego (UCSD). The project aims to develop energy-efficient artificial intelligence (AI) hardware by integrating thin-film lithium niobate, a high-performance electro-optic material, with silicon photonic chip...
- The National Science Foundation (NSF) awarded Emode Photonix LLC a $305,000 SBIR Phase I Project Grant under the NSF Technology, Innovation, and Partnerships (CFDA 47.084) federal grant program. The funding will support the development of a new computer program for modeling nonlinear optical interactions in complex waveguide structures used in quantum photonics technology. This innovation addresses limitations in existing modeling approaches, enabling more accurate and efficient design of...
- Photonect Interconnect Solutions Inc. received a $275,000 Project Grant award from the National Science Foundation under the NSF Technology, Innovation, and Partnerships federal grant program (CFDA 47.084) to develop a chip technology for cheaper and easier photonic device manufacturing. The company will focus on a new fusion splicing machine and novel silicon dioxide mode converter that enables faster, more accurate, and lower cost fiber placement on chips compared to existing technologies....
- This $380,000 Project Grant award from the National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems under CFDA Program 47.041 (Engineering) will fund the development of new types of on-chip "topological photodetectors" that can detect and differentiate between different modes and properties of light, such as its phase, polarization, and orbital angular momentum. These novel photodetectors, based on emerging quantum materials like Weyl semimetals,...
NSF-SNSF: FAST AND SCALABLE FRAMEWORK FOR NEXT-GENERATION VERY-LARGE-SCALE SILICON PHOTONIC DESIGN -THIS U.S.?SWISS PROJECT TACKLES A MAJOR BARRIER IN THE DEVELOPMENT OF SILICON PHOTONIC CHIPS ? A KEY TECHNOLOGY FOR FASTER, ENERGY-EFFICIENT DATA MOVEMENT IN COMPUTING, COMMUNICATIONS, AND SENSING. CURRENT DESIGN METHODS ARE SLOW, EXPENSIVE, AND HARD TO SCALE. THIS PROJECT INTRODUCES FUSION NETWORK (FUSNET), A NOVEL APPROACH THAT COMBINES SIMULATION AND DESIGN OPTIMIZATION INTO A SINGLE, FAST PROCESS. BY USING ADVANCED COMPUTING HARDWARE AND AI-GUIDED TECHNIQUES, FUSNET DRASTICALLY REDUCES THE TIME AND EFFORT REQUIRED TO CREATE COMPLEX PHOTONIC CIRCUITS. BEYOND TECHNICAL INNOVATION, THE PROJECT BUILDS A GLOBAL TRAINING PIPELINE IN SEMICONDUCTOR DESIGN, FEATURING U.S.?SWISS STUDENT EXCHANGES, CURRICULUM INTEGRATION, AND INDUSTRY-ALIGNED PROGRAMS WITH CADENCE DESIGN SYSTEMS. THE RESULTS ? INCLUDING SOFTWARE TOOLS AND DESIGN METHODS ? WILL BE SHARED OPENLY TO BENEFIT THE BROADER RESEARCH AND ENGINEERING COMMUNITIES. FUSNET IS A HARDWARE-ACCELERATED FRAMEWORK THAT UNIFIES ELECTROMAGNETIC SIMULATION AND OPTIMIZATION IN A REAL-TIME LOOP, ENABLING ONE-SHOT PHOTONIC DEVICE DESIGN. IT LEVERAGES STRUCTURAL SIMILARITIES BETWEEN FORWARD AND ADJOINT METHODS TO MERGE THE SIMULATION AND OPTIMIZATION PROCESSES, IMPROVING EFFICIENCY WHILE MAINTAINING ACCURACY. FUSNET?S STREAMING ARCHITECTURE IS IMPLEMENTED ON HIGH-THROUGHPUT DATAFLOW HARDWARE, SUCH AS CGRAS AND FPGAS, OVERCOMING TRADITIONAL BOTTLENECKS IN MEMORY ACCESS AND PARALLELIZATION. THE PROJECT INCLUDES ALGORITHMIC INNOVATION, SCALABLE HARDWARE DESIGN, AND EXPERIMENTAL VALIDATION THROUGH CHIP FABRICATION. THE WORK ADDRESSES FUNDAMENTAL CHALLENGES IN COMPUTATIONAL PHOTONICS, OPTIMIZATION THEORY, AND HARDWARE-SOFTWARE CO-DESIGN, WITH STRONG APPLICATIONS IN AI SYSTEMS, HPC INTERCONNECTS, AND OPTICAL SENSING. THIS COLLABORATIVE US-SWISS PROJECT IS SUPPORTED BY THE US NATIONAL SCIENCE FOUNDATION (NSF) AND THE SWISS NATIONAL SCIENCE FOUNDATION (SNSF), WHERE NSF FUNDS THE US INVESTIGATOR AND SNSF FUNDS THE PARTNERS IN SWITZERLAND. 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 | $50.0k | 8/19/25 |