Project Grant 2339623
- This Project Grant award of $416,387 from the National Science Foundation's (CFDA 47.049 - Mathematical and Physical Sciences) program supports a collaborative research project at the Massachusetts Institute of Technology (MIT) to investigate emergent phenomena and novel correlated phases of matter in a unique family of crystalline 2D semiconductor materials. The project aims to leverage the high material quality, electric gate tunability, and strongly interacting electrons within highly...
- This $360,000 Project Grant awarded by the National Science Foundation's (NSF) Engineering program (CFDA 47.041) funds a comprehensive theoretical investigation of magnon devices built upon two-dimensional (2D) magnetic materials. The primary objective is to elucidate the mechanisms underlying the generation, propagation, and detection of magnon currents within realistic 2D structures, with the goal of identifying material parameters capable of generating magnon currents comparable to or...
- This Project Grant award from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) in the amount of $306,110 supports research and workforce development activities at the New Mexico Institute of Mining and Technology (New Mexico Tech) focused on light-controlled magnetism in quantum materials. The project combines experimental work at New Mexico Tech and Georgetown University with theoretical modeling at the University of Chile to investigate light-induced...
- This NSF Integrative Activities (CFDA 47.083) Project Grant award of $300,000 to Brown University will support a research infrastructure improvement project focused on developing an experimental method to directly probe the configuration of electron spins in 2D materials like multilayer graphene. The key objectives are to: 1) establish a user program located in Rhode Island to provide research and intern opportunities for students, thereby training the state's quantum workforce, and 2)...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports research on multiterminal graphene Josephson junctions at Duke University. The $510,000 award, effective August 1, 2024 through July 31, 2027, focuses on developing and understanding a novel type of quantum device with potential applications in future quantum technologies. The project aims to enhance the understanding of the physical properties and topological...
- This $388,500 National Science Foundation project grant supports research into the electronic properties of two-dimensional systems subjected to low-energy light excitation at Georgia State University from August 2022 to July 2025. The award is part of NSF's Mathematical and Physical Sciences program (CFDA 47.049), which aims to strengthen the nation's scientific enterprise through advancing knowledge in these fields. Specifically, the university will experimentally examine the magnetoelectronic...
- This $545,491 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program supports research by The Pennsylvania State University on "Exploring Emergent Phenomena at the Interface of Topological Semimetals, Magnetism, and Superconductivity." The project aims to develop and study new "hybrid topological semimetal heterostructures" where the material's topological properties can be electrically tuned. Using advanced synthesis and...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) provides $208,120.00 to Carnegie Mellon University to explore the unique light-matter interaction and emerging properties in individual and stacked atomically thin semiconductors. The key objectives are to: 1) investigate the excitonic physics and many-body effects in monolayer transition metal dichalcogenides (TMDCs) using advanced optical spectroscopy techniques, and...
- This Project Grant award, provided by the National Science Foundation (NSF) through the Mathematical and Physical Sciences program (CFDA 47.049), supports a collaborative research effort between the University of Wyoming and Colorado State University to explore the novel magnetic properties of two-dimensional van der Waals magnets. The $232,786 award, effective August 1, 2024 through July 31, 2027, aims to investigate the unconventional magnetic domains and metastable magnetic phase...
- This $220,807 Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports the development of a transformative approach to access quantum states and encode quantum information using atomically-engineered heterostructures consisting of transition metal dichalcogenide monolayers and plasmonic nanoantennas. The key technical objectives are to: 1) Leverage the ultrafast decay of plasmons to electronically readout spin-valley quantum states, 2) Fabricate...
CAREER: DESIGNING AND PROBING EMERGENT PHASES WITH TUNABLE MAGNONS IN GRAPHENE -NON-TECHNICAL ABSTRACT MAGNONS ARE QUANTUM MECHANICAL, WAVE-LIKE OBJECTS IN MAGNETIC MATERIALS THAT DISPLAY FUNDAMENTALLY DIFFERENT CHARACTERISTICS THAN ELECTRONS. HARNESSING MAGNONS PRESENTS AN INTRIGUING AVENUE FOR CREATING SYNTHETIC MATTER NOT FOUND IN NATURE AND DEVELOPING NEXT-GENERATION QUANTUM DEVICES WITH UNPRECEDENTED FUNCTIONALITIES. WHILE THE PROPERTIES OF ELECTRONS HAVE BEEN INTENSIVELY STUDIED, THE INVESTIGATION OF MAGNONS AND THEIR COLLECTIVE BEHAVIOR IN SOLIDS REMAINS EXTREMELY LIMITED. A PROMISING AND TUNABLE PLATFORM TO EXPLORE THIS DIRECTION IS GRAPHENE - A SHEET OF CARBON ATOMS - PLACED IN A STRONG MAGNETIC FIELD, WHERE MAGNONS CAN BE EFFICIENTLY LAUNCHED AND DETECTED. THE PRIMARY GOAL OF THIS PROJECT IS TO EXPLORE THE POSSIBLE QUANTUM PHENOMENA THAT CAN BE ENGINEERED BY USING MAGNONS AS BUILDING BLOCKS AND TO INVESTIGATE THE FEASIBILITY OF UTILIZING MAGNONS TO PROBE THE MAGNETIC PROPERTIES OF ATOMICALLY THIN MATERIALS. THE SUCCESS OF THIS PROJECT PROMISES TO ADVANCE THE FRONTIER OF FUNDAMENTAL QUANTUM SCIENCE AND ENABLE INNOVATIVE PATHWAYS TO FUTURE QUANTUM TECHNOLOGIES SUCH AS ULTRA-LOW-POWER INFORMATION DEVICES. THIS PROJECT ALSO CONNECTS MATERIALS EDUCATION WITH THE GROWING SOCIETAL DEMAND FOR QUANTUM TECHNOLOGY THROUGH RESEARCH-INFORMED EDUCATION AND OUTREACH PROGRAMS FOR HIGH SCHOOL, UNDERGRADUATE, AND GRADUATE STUDENTS. TECHNICAL ABSTRACT THE EXPLORATION OF CORRELATED AND TOPOLOGICAL STATES OF CHARGE-NEUTRAL BOSONS PRESENTS A COMPELLING AVENUE FOR ADVANCING OUR UNDERSTANDING OF EMERGENT PHASES OF MATTER NOT FOUND IN NATURE AND UNLOCKING NEW OPPORTUNITIES IN QUANTUM TECHNOLOGY. MAGNONS, ALSO KNOWN AS SPIN WAVES, IN THE QUANTUM HALL FERROMAGNETIC STATE OF MONOLAYER GRAPHENE, HAVE RECENTLY EMERGED AS A VERSATILE SOLID-STATE PLATFORM FOR DESIGNING AND PROBING EMERGENT PHASES OF BOSONS, OWING TO THEIR EXTRAORDINARY TUNABILITY, LONG LIFETIME, ALL-ELECTRICAL GENERATION AND DETECTION SCHEME AND THEIR REMARKABLE SENSITIVITY TO THE MAGNETIC ENVIRONMENT. HOWEVER, OUR KNOWLEDGE ABOUT THE INTERACTION BETWEEN MAGNONS AND THEIR COUPLING TO THE SURROUNDING ENVIRONMENTS REMAINS EXTREMELY LIMITED. THE PROJECT AIMS TO EXPERIMENTALLY ADDRESS THESE KEY QUESTIONS TO FACILITATE FUTURE THEORETICAL ANALYSIS AND EXPERIMENTAL DEVELOPMENT OF EMERGENT PHASES OF MAGNONS AND A MAGNON-ENABLED SPIN PROBE. THIS INVESTIGATION IS MADE POSSIBLE BY LEVERAGING RECENT ADVANCES IN VAN DER WAALS ASSEMBLY AND MOIR? QUANTUM MATTER, ALONG WITH A CREATIVE COMBINATION OF QUANTUM ELECTRONIC TRANSPORT AND SCANNING PROBE MICROSCOPY TECHNIQUES TO EXTRACT TRANSPORT AND THERMODYNAMICS PROPERTIES OF MAGNONS IN ULTRA-HIGH-QUALITY GRAPHENE HETEROSTRUCTURES. ULTIMATELY, THIS PROJECT PROVIDES A NEW PATHWAY FOR THE DESIGN, CONSTRUCTION, CHARACTERIZATION, AND MANIPULATION OF CORRELATED AND TOPOLOGICAL PHASES OF BOSONS IN SOLIDS AND ESTABLISHES A NEW, GENERIC, AND EFFECTIVE TOOL FOR UNRAVELING CORRELATED PHENOMENA IN TWO-DIMENSIONAL MATERIALS. IN ADDITION, THIS PROJECT HAS A BROADER IMPACT THROUGH RESEARCH AND TRAINING OPPORTUNITIES IN QUANTUM SCIENCE FOR UNDERGRADUATES, GRADUATE STUDENTS, AND HIGH SCHOOL TEACHERS, AND A NEW COURSE ON TWO-DIMENSIONAL QUANTUM MATERIALS. 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 | $179.5k | 3/10/25 | ||
| Not listed | $10.0k | 2/27/24 | ||
| Not listed | $163.1k | 1/23/24 |