Project Grant 2312716
- This Project Grant from the National Science Foundation's Engineering Directorate ($400,000) supports the development of smart radio environments using reconfigurable intelligent surfaces to improve millimeter-wave communications. Specifically, the University of Utah will create a modular radio hardware prototype capable of precise phase control at millimeter-wave frequencies. They will also develop advanced signal processing algorithms for practical reconfigurable intelligent surface-aided...
- This Project Grant from the National Science Foundation's $375,000 Computer and Information Science and Engineering program will support the development of opportunistic millimeter-wave receivers and associated algorithms from 2023 to 2025. The University of Southern California will use the funding to create transceiver hardware and array-based receivers that can adaptively operate within the 18-54 GHz spectrum through machine learning techniques. The receivers will identify available...
- This Project Grant awarded by the National Science Foundation's (NSF) Computer and Information Science and Engineering (CISE) program provides $100,333 to the Rochester Institute of Technology (RIT) to develop smart surfaces capable of adaptively modifying wireless channels. The goal is to unlock the full potential of wireless networks by manipulating the propagation environment to achieve greater spatial multiplexing and coverage for massive numbers of devices and exponential growth in data...
- This Project Grant award from the National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems, under the NSF Engineering program (CFDA 47.041), provides $1,500,000 to the University of Central Florida (UCF) to develop an energy- and spectrum-efficient millimeter-wave (mmW) transmitter array system for next-generation wireless communications. The key objectives are to: 1) Utilize heterogeneous integration and advanced packaging to embed high-power wide-bandgap...
- 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 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...
- The National Science Foundation (NSF) Directorate for Engineering (CFDA 47.041) awarded a $300,000 Project Grant to the Georgia Tech Research Corporation (Georgia Tech) to conduct collaborative research on reconfigurable intelligent electromagnetic surfaces using magnetically responsive soft materials. The goal is to develop a new approach to dynamically manipulate electromagnetic waves with a flat aperture, enabling reconfigurable intelligent surfaces (RIS) for 5G and beyond wireless systems in...
- 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 of $174,988 from the National Science Foundation (NSF) Division of Atmospheric and Geospace Sciences will support the development of a millimeter-wavelength (mmWave) rapid scan image phased array radar technology demonstrator unit. The objective is to evaluate the feasibility of a future ground-based, mobile phased array cloud radar system that could provide high-resolution measurements of cloud processes, which are crucial for understanding the Earth's climate and...
- This $392,098 National Science Foundation award under the Engineering (CFDA 47.041) program will fund research to establish new theoretical foundations for active metamaterial transmission lines (MTLs) that can control the amplitude and phase of electromagnetic waves. The goal is to develop transformative transmission line technology to address increasing demands for enhanced data capacity, higher spatial resolution, multi-functionality, and smaller circuit and system dimensions in microwave...
COLLABORATIVE RESEARCH: NETS: MEDIUM: SCALABLE METASURFACE ARRAY FOR MMWAVE COMMUNICATION AND SENSING -MILLIMETER-WAVE (MMWAVE) TECHNOLOGIES ARE DEMONSTRATING EXCITING PROSPECTS IN BOTH 5G COMMUNICATIONS AND RADAR SENSING APPLICATIONS. HOWEVER, THE LIMITED COVERAGE OF MMWAVE REMAINS A MAJOR CHALLENGE TO ITS USABILITY IN PRACTICE. THE OBJECTIVE OF THIS PROJECT IS TO HARNESS SYNERGISTIC INNOVATIONS IN MMWAVE COMMUNICATION/SENSING SYSTEMS AND PRINTABLE MATERIALS/ELECTRONICS TO OVERCOME THE INTRINSIC LIMITATIONS OF MMWAVE SIGNALS. THE PI TEAM EXPLORES THE DESIGN OF AN ULTRA-LARGE AND ULTRA-WIDEBAND METASURFACE ARRAY TO EXPAND MMWAVE COVERAGE AND OPTIMIZE THE ASSOCIATED PERFORMANCE TRADEOFFS. THE PROJECT OUTCOME WILL LIKELY INFORM THE DESIGN OF MMWAVE NETWORKS, INFLUENCE THE BEYOND-5G (B5G) STANDARDIZATION, AND ADVANCE MANY B5G APPLICATIONS, ESPECIALLY IN THE CHALLENGING MMWAVE VEHICULAR NETWORKING AND AUTOMOTIVE SENSING DOMAINS. THE PROJECT CAN ALSO GENERATE SUBSTANTIAL ECONOMIC IMPACTS BY BOOSTING THE 5G MMWAVE COVERAGE AND RELIABILITY AT SIGNIFCANTLY LOW COST. THE PROJECT IMPACT WILL BE FURTHER EXTENDED BY ENGAGING A DIVERSE GROUP OF STUDENT RESEARCHERS AND INDUSTRIAL PARTNERS, AND BY DISSEMINATING OPEN-SOURCE EXPERIMENTAL HARDWARE AND LOW-COST FABRICATION WORKFLOWS FOR ADVANCED MMWAVE DEVICES. THE PROPOSED RESEARCH INCORPORATES NOVEL PRINTABLE MATERIALS/ELECTRONICS TO ADVANCE THE FIELD OF MMWAVE METASURFACE REFLECTORS. ALTHOUGH ACTIVE AND PASSIVE METASURFACES HAVE BEEN EXTENSIVELY EXPLORED IN ELECTROMAGNETIC RESEARCH, THEY ARE LIMITED IN SIZE, BANDWIDTH, AND MOSTLY EMPLOYED FOR A SINGLE LINK. ACTIVE METASURFACES BEAR A HIGH COST AND COMPLEXITY AS THEY NEED POWER SOURCES, HIGH-FREQUENCY COMPONENTS, HIGH-PRECISION SUBSTRATE AND FABRICATION PROCESSES, AND A SEPARATE CONTROL CHANNEL TO COORDINATE WITH EXISTING DEVICES. ON THE OTHER HAND, PASSIVE METASURFACE REFLECTORS ARE OFTEN DEEMED INFERIOR AND SUITABLE ONLY FOR STATIC SCENARIOS DUE TO LACK OF RECONFIGURABILITY. IN ADDITION, STATE-OF-THE-ART ACTIVE/PASSIVE METASURFACES ARE LIMITED TO CENTIMETER-SCALE, YET PRACTICAL DEPLOYMENT ENTAILS METER-LEVEL (HUNDREDS OF WAVELENGTHS) IN DIMENSION, WHICH INDUCES NON-TRIVIAL CHALLENGES SUCH AS SEVERE BEAM DISTORTION DUE TO NEAR-FIELD EFFECTS AND FREQUENCY-SELECTIVITY. TO ADDRESS THESE CHALLENGES, THE PI TEAM PROPOSES 3 RESEARCH THRUSTS: (1) DESIGNING NEW BEAM SYNTHESIS MODELS TO ENABLE ULTRA-LARGE METASURFACES, AND NEW TECHNIQUES TO INCREMENTALLY RECONFIGURE A PASSIVE METASURFACE ARRAY (PMA), SO AS TO EXPAND THE ANGULAR COVERAGE, BEAMFORMING GAIN, SUPPORT MOBILITY, AND TO AVOID INTERFERENCE BETWEEN NEARBY BASE STATIONS; (2) DESIGNING NEW MECHANISMS THAT LEVERAGE THE PMA AS A PASSIVE ENCODER TO ADDRESS THE COVERAGE-RESOLUTION-DIMENSION TRADEOFF IN MMWAVE SENSING; (3) EXPLORING GRAPHENE-BASED METASURFACE STRUCTURES TO SCALE MMWAVE JOINT COMMUNICATION AND SENSING BEYOND THE BANDWIDTH LIMIT OF TRADITIONAL RF HARDWARE. THE PROPOSED RESEARCH WILL LEAD TO VARIOUS COMMUNITY TOOLSETS AND REPRODUCIBLE FABRICATION WORKFLOWS FOR CREATING LOW-COST MMWAVE METASURFACES THROUGH 3D PRINTING OR MOLD IMPRINTING. 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 | $100.0k | 9/3/25 | ||
| Not listed | $300.0k | 8/21/23 |