Project Grant 2520250
- The National Science Foundation (NSF) awarded a $600,000 Project Grant under the Engineering program (CFDA 47.041) to the University of Texas at Dallas (UTD) for the "COLLABORATIVE RESEARCH: ASCENT: WAFER-SCALE SUB-THZ REFLECTARRAY FOR ELECTRICAL NEEDLE BEAM FORMING AND STEERING" project. The project aims to develop a set of semiconductor technologies, including new device fabrication, large-scale heterogeneous integration, and robust beam-alignment system architectures, to achieve...
- This Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) will support the development of key building blocks for realizing next-generation wireless networks that can provide efficient and low-latency access to the sub-terahertz (sub-THz) spectrum. The $400,000 award to William Marsh Rice University, spanning December 1, 2024 to November 30, 2027, will focus on three integrated research thrusts: 1) Realizing multi-user sub-THz spectrum access using a...
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) provides $400,000 over 3 years to the University of California, Berkeley to develop novel intelligent large-scale multi-antenna array architectures operating at 140 GHz. The key products and services to be delivered include: Analytical and behavioral modeling of non-idealities in large scalable antenna arrays Design of reconfigurable D-band (140 GHz) front-ends with performance tuning...
- This National Science Foundation (NSF) Engineering program (CFDA 47.041) Project Grant award of $400,000 to Brown University provides funding from December 1, 2024 to November 30, 2027 for research to develop key building blocks for realizing high-data rate, low-latency sub-terahertz (sub-THz) wireless networks. The key technical objectives are to: 1) Realize multi-user sub-THz spectrum access using a reconfigurable metasurface architecture without needing RF chains or antenna arrays; 2)...
- This Project Grant from the National Science Foundation's Technology, Innovation, and Partnerships program (CFDA 47.084) provides $276,000 to Astrabeam LLC and Penn State University to develop a D-band, silicon-based phased array radar front-end module for smart sensing applications. Specifically, the awardees will design, model, simulate, and demonstrate a prototype radar module operating beyond 100 GHz with wide bandwidth. The scalable, area-efficient front-end architecture and phased array...
- This National Science Foundation (NSF) Project Grant award under the Engineering program (CFDA 47.041) provides $244,830 to Tufts University to conduct collaborative research on fundamental challenges in extremely wideband, highly directional channels for future terahertz-enabled wireless networks. The key objectives are to design hybrid beamforming algorithms for wideband multicarrier systems, investigate joint user association with base stations and reconfigurable intelligent surfaces, and...
- This National Science Foundation (NSF) award under the Computer and Information Science and Engineering program (CFDA 47.070) provides $595,346 to Portland State University to develop and experimentally validate "random reflective surfaces" that can enhance the propagation of terahertz (THz) signals for high-speed 6G and beyond wireless networks. The project aims to build these specialized reflectors and evaluate their ability to create a rich multipath environment, which can boost the...
- This $440,000 Project Grant awarded by the National Science Foundation's Engineering program (CFDA 47.041) will fund the development of a semiconductor plasma phased array system with integrated performance-to-radiator mapping capabilities. The primary objectives are to: (1) develop a plasma phased array focusing on feed network solutions, and (2) create fast AI/ML-supported reconfiguration algorithms to enable real-time mapping of system performance to the radiator profile. The project aims...
- This Project Grant award from the National Science Foundation (NSF) Computer and Information Science and Engineering (CISE) Federal Grant Program (CFDA 47.070) provides $340,000 to the Board of Regents of the University of Nebraska to conduct research and development on active reconfigurable intelligent surfaces (Active-RIS) for sub-terahertz (sub-THz) wireless networks. The key objectives are to: 1) Design and prototype a wideband liquid crystal-based RIS operating at 142 GHz, 2) Develop...
- This federal Project Grant award of $595,000.00, provided by the National Science Foundation's Engineering program (CFDA 47.041), aims to develop a scalable planar phased-array transceiver using 3D radio-frequency integrated circuit (RFIC) techniques. The primary objective is to establish a foundational building block for future high-frequency wideband wireless communication platforms operating at frequencies higher than 100 GHz. Additionally, the project includes an educational and outreach...
COLLABORATIVE RESEARCH: ASCENT: WAFER-SCALE SUB-THZ REFLECTARRAY FOR ELECTRICAL NEEDLE BEAM FORMING AND STEERING -IN THIS ASCENT PROJECT, THE TEAM AIMS TO DEVELOP A SET OF SEMICONDUCTOR TECHNOLOGIES, INCLUDING NEW DEVICE FABRICATION, LARGE-SCALE HETEROGENEOUS INTEGRATION, AND ROBUST BEAM-ALIGNMENT SYSTEM ARCHITECTURES, TO ACHIEVE ELECTRICALLY CONTROLLED COLLIMATION OF ELECTROMAGNETIC WAVES IN SUB-TERAHERTZ (SUB-THZ) FREQUENCY BANDS AT LOW COST. COMPARED TO THE EXISTING 5G WIRELESS BANDS BELOW 100 GHZ, THE SUB-THZ BANDS OFFER UNPRECEDENTED WIDE BANDWIDTH THAT CAN ENABLE ULTRA-FAST DATA RATE FOR DATA CENTER NETWORKING AND WIRELESS INFRASTRUCTURE, AS WELL AS HIGH PRECISION FOR RADAR AND IMAGING. THE ELECTRONIC HARDWARE DEVELOPED IN THIS PROJECT PROVIDES A HIGHLY DESIRABLE FUNCTION FOR MOST SUB-THZ SYSTEMS -- FOCUSING THE BEAM POWER WITHIN ONE DEGREE IN SPACE (HENCE THE TERM NEEDLE BEAM IN THE PROJECT TITLE) WITH HIGH-PRECISION ELECTRONIC CONTROL OF THE BEAM DIRECTION. THE NEW HARDWARE ARCHITECTURE ENABLES WIRELESS COMMUNICATION SYSTEMS TO ACHIEVE A HIGH DATA RATE UP TO 120 GBPS OVER A DISTANCE GREATER THAN ONE KILOMETER. IT ALSO ENABLES RADAR IMAGING SYSTEMS TO ACHIEVE HIGH-RESOLUTION SENSING OF THE AMBIENT ENVIRONMENT, WHICH IS CRITICAL FOR ALL-WEATHER SAFE OPERATION OF AUTONOMOUS VEHICLES. IN ADDITION, THIS PROJECT NOT ONLY PROVIDES EXTENSIVE GRADUATE RESEARCHER TRAINING IN HIGH-FREQUENCY CIRCUIT DESIGNS AND ADVANCED SEMICONDUCTOR MANUFACTURING BUT ALSO PROMOTES STEM EDUCATION THROUGH VARIOUS PROGRAMS. NEEDLE BEAM FORMING AT 140 GHZ REQUIRES LARGE (> 70X70 MILLIMETER SQUARE) ELECTRONIC PHASE-CONTROLLING SURFACES WITH LOW SIGNAL LOSS AT HIGH FREQUENCIES. THEREFORE, TRANSISTORS FABRICATED USING ADVANCED LITHOGRAPHY ARE NEEDED. RECENT DEMONSTRATIONS OF SUB-THZ REFLECTARRAY USING EITHER TILED COMPLEMENTARY METAL-OXIDE-SEMICONDUCTOR (CMOS) FINFET CHIPS OR CHIP PACKAGE MODULES HAVE EXCESSIVELY HIGH FABRICATION AND ASSEMBLY COSTS. IN THIS PROJECT, THE TEAM EXPLORES A NEW DIRECT WAFER-SCALE INTEGRATION APPROACH THROUGH LOW-TEMPERATURE FABRICATIONS OF CUSTOM METAL-INSULATOR-SEMICONDUCTOR-INSULATOR-METAL (MISIM) VARIABLE CAPACITANCE DEVICES AND HIGH-EFFICIENCY SUB-THZ ANTENNAS ON TOP OF A FOUNDRY-PROCESSED INTEGRATED-CIRCUIT GLASS SUBSTRATE. WITHOUT USING ANY EXPENSIVE ADVANCED LITHOGRAPHY, THE DEVICES CAN STILL ACHIEVE LOW-LOSS PHASE SHIFTING OF SUB-THZ SIGNALS, HENCE SIGNIFICANTLY REDUCING THE COST OF THE NEEDLE-BEAM-FORMING SYSTEM. THE PROJECT ALSO INVESTIGATES NEW REFLECTARRAY CIRCUITS THAT PERFORM SELF-CORRECTION OF DEVICE DEFECTS AND PROCESS VARIATIONS, AS WELL AS NEW REFLECTARRAY TRANSCEIVER ARCHITECTURES THAT ENABLE COMPACT OVERALL SYSTEM FORM FACTOR AND HIGH-PRECISION BEAM ALIGNMENT. 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 | $80.0k | 8/18/25 |