Project Grant 2425545

Award Date 9/15/24
Completion Date 8/31/27
Dollars Obligated $32K
Funding Federal Agency
National Science Foundation
Awarding Federal Agency
Division of Materials Research
Federal Grant Program
47.049
Assistance Type
Project Grant
Place of Performance
College Station, TX 77843, USA
Similar Awards
The National Science Foundation (NSF) awarded a $280,000 Project Grant under the Engineering (CFDA 47.041) program to The Research Foundation For The State University Of New York (RF SUNY). The grant, titled "ENG-SEMICON: MANUFACTURING USA: PLASTICITY-INDUCED CU-CU BONDING FOR SCALABLE 3D CHIP INTEGRATION IN ADVANCED SEMICONDUCTOR PACKAGING", aims to develop optimal copper-to-copper (Cu-Cu) bonding microstructures for enabling scalable and reliable hybrid bonding in 3D chip...
This $486,461 Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) supports fundamental research to develop ultrathin and reliable copper diffusion barriers for advanced copper interconnects in semiconductor chip manufacturing. The research, conducted by the University of Louisiana at Lafayette, aims to replace the typical tantalum/tantalum nitride diffusion barrier with amorphous carbon and nitrogen-doped amorphous carbon films deposited using...
This National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) Phase I Small Business Innovation Research (SBIR) grant of $275,000 awarded to Lumoniq Inc. supports research and development of a nanoscale hybrid optical interconnect platform to revolutionize internal computer chip connections. The project aims to commercialize a new approach called Coupled Hybrid Plasmonics (CHP) that uses the interaction of light and metals to enable high-bandwidth, low-power,...
This federal Project Grant award from the National Science Foundation (NSF) under the Technology, Innovation, and Partnerships (TIP) program (CFDA 47.084) provides $960,000 to Cornell University to develop new methods for optically interconnecting multiple chips within computer servers. The goal is to enable faster and more energy-efficient data transfer between accelerators, such as GPUs, which is crucial for applications like artificial intelligence, climate modeling, and biomedical...
This Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) is supporting the development of a new class of two-dimensional (2D) oxyhalide semiconductors that are compatible with back-end-of-the-line (BEOL) processing for energy-efficient electronic devices. The $570,000 award to the University of Texas at Dallas will investigate the low-temperature growth of these 2D oxyhalides and their electronic properties, as well as strategies to control chemical...
The National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems awarded a $105,194 EAGER (EArly-concept Grants for Exploratory Research) grant to the University of Pittsburgh to develop a novel semiconductor-metal-semiconductor (S-M-S) multilayer film as an interconnect for perovskite-silicon tandem solar cells. The project aims to design an interconnect with high electrical conductivity and optical transparency to enhance the performance of these tandem solar...
The National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems awarded a $385,000 Project Grant to Northwestern University to develop cross-layer techniques from device to circuit and architecture for the large-scale integration of ferroelectric field effect transistors (FeFET) with complementary metal-oxide-semiconductor (CMOS) technology. This research aims to enable emerging computing applications, such as AI, robotics, augmented/virtual reality, and autonomous...
This $500,000 National Science Foundation project grant supports research at the University of California, Riverside to develop novel machine learning-based electromigration analysis and optimization methods for very large-scale integrated circuit design. Specifically, the university will explore enhanced physics-informed neural network approaches for multi-segment interconnect stress analysis and full-chip electromigration-induced voltage drop modeling. Researchers will also develop efficient...
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) provides $332,817 to the University of California, Santa Barbara (UCSB) to conduct research on novel gate-stack engineering for 2D materials-based field-effect transistors (FETs). The project aims to develop a comprehensive simulation framework and fabricate test structures to address the design, fabrication, reliability, and performance challenges of 2D semiconductor FETs. This research seeks to...

FUSE2 TOPIC 3: SPRINT: SCALABLE, HIGH PERFORMANCE AND RELIABLE INTERCONNECT TECHNOLOGIES BASED ON INTERFACE CO-DESIGN -NONTECHNICAL DESCRIPTION INTERCONNECTS ARE LAYERS OF METAL CONDUCTORS WITH NANOSCALE TO MICROSCALE DIMENSIONS THAT CONNECT DIFFERENT ELECTRONIC DEVICES IN A COMPUTER CHIP. COPPER IS THE STANDARD FOR ITS ABUNDANCY, LOW COST AND GOOD ELECTRICAL CONDUCTIVITY. HOWEVER, WHEN ITS DIMENSIONS ARE REDUCED BELOW 10 NANOMETERS, ITS RESISTIVITY INCREASES DRAMATICALLY. AS A CONSEQUENCE, POWER CONSUMPTION AND HEAT GENERATION INCREASE DRAMATICALLY. THIS SCALING TREND FOR COPPER INTERCONNECTS HAS TWO CAUSES. FIRST, ELECTRONS IN ULTRATHIN COPPER NANOWIRES CAN NO LONGER MOVE FREELY DUE TO STRUCTURE AND PROPERTY CHANGES. SECOND, THE SURFACE OF COPPER NANOWIRES MUST BE ENCAPSULATED WITH AN INSULATING LAYER TO MAKE THE STRUCTURE MORE STABLE, BUT THIS FURTHER REDUCES CHARGE TRANSPORT. THIS PROJECT AIMS TO DEVELOP A NEW WAY TO SYNTHESIS COPPER NANOWIRES AND DESIGN EFFECTIVE ENCAPSULATION LAYERS BASED ON TWO-DIMENSIONAL MATERIALS. THESE BREAK THE PARADIGM LIMITING CURRENT INTERCONNECT TECHNOLOGY AND ENABLE NEXT GENERATION HIGH-PERFORMANCE AND ENERGY-EFFICIENT COMPUTER CHIPS. RESEARCH IN THIS HIGHLY INTERDISCIPLINARY PROJECT IS INTEGRATED WITH EDUCATION AND WORKFORCE DEVELOPMENT. THE PROJECT ENGAGES STUDENTS AT ALL LEVELS, PROVIDING TRAINING IN PHYSICS, MATERIALS SCIENCE, AND NANOELECTRONICS. INVESTIGATORS CLOSELY COLLABORATE WITH INDUSTRY, GOVERNMENT, AND EDUCATION PARTNERS TO CULTIVATE FUTURE TECHNOLOGY LEADERS AND INCUBATE TECHNOLOGY TRANSFER. TECHNICAL DESCRIPTION IN MODERN MICROCHIP TECHNOLOGIES, AGGRESSIVE DOWNSCALING OF THE LOGIC, MEMORY, AND INTERCONNECT COMPONENTS IS CRUCIAL. CONVENTIONAL INTERCONNECT TECHNOLOGIES BASED ON POLYCRYSTALLINE CU FACE THE FOLLOWING FUNDAMENTAL DOWNSCALING CHALLENGES: (I) THE RESISTIVITY INCREASES DRASTICALLY AS ITS LINEWIDTH IS DECREASED DUE TO ELECTRON SCATTERING AT THE METAL/INSULATOR INTERFACES AND GRAIN BOUNDARIES; AND (II) THE INTERFACIAL LINERS AND BARRIERS AROUND CU WIRES ARE ESSENTIAL TO AVOID THE IONIC DIFFUSION ACROSS THE METAL/INSULATOR INTERFACE, BUT THESE ADDITIONAL NON-CONDUCTIVE STRUCTURES FURTHER COMPROMISE THE DOWNSCALING CAPABILITY. THIS PROJECT AIMS TO ESTABLISH A MULTIDISCIPLINARY AND CLOSED-LOOP CO-DESIGN FRAMEWORK TO FACILITATE THE INVESTIGATION OF THE CHEMICAL AND ATOMIC STRUCTURE AT THE METAL/INSULATOR INTERFACE AND ITS ELECTRONIC AND IONIC TRANSPORT PROPERTIES AND TO ENABLE ADVANCED INTERCONNECT APPLICATIONS THAT ARE SCALABLE, HIGH-PERFORMANCE, AND RELIABLE. PRECISE CONTROL OF THE METAL SURFACE ORIENTATION AND ITS INTERFACE WITH THE ATOMICALLY THIN 2D-MATERIAL-BASED LINER-BARRIER ARE ESTABLISHED THROUGH MULTISCALE SIMULATION, NOVEL METAL DEPOSITION AND HETEROSTRUCTURE INTEGRATION PROCESSES, AND MULTI-MODAL MATERIAL-DEVICE CO-CHARACTERIZATION. THE 2D MATERIAL LAYER ENCAPSULATED ON THE SURFACE OF CU NANOWIRES WILL FACILITATE THE MODULATION CU CRYSTAL SURFACE ORIENTATION, AND AT THE SAME TIME, SERVE AS THE ULTRATHIN ION DIFFUSION BARRIER TO ENHANCE THE INTERCONNECT RELIABILITY. THIS PROJECT ALSO OFFERS POTENTIAL PATHWAYS FOR INTEGRATING THIS NEW INTERCONNECT TECHNOLOGIES WITH SILICON INTEGRATED CIRCUIT CHIPS, PAVING THE WAY FOR UPSCALING SUCH AN EMERGING TECHNOLOGY FOR INDUSTRIAL DEVELOPMENT AND MANUFACTURING. 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 PLANNED FOR THIS AWARD.

Posted 9/9/24