Project Grant 2108357

Award Date 7/1/21
Completion Date 6/30/24
Dollars Obligated $480K
Federal Grant Program
47.049
Assistance Type
Project Grant
Place of Performance
Cambridge, MA 02139, USA
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This Project Grant award, valued at $555,000.00 and awarded by the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program, supports research at the Massachusetts Institute of Technology (MIT) focused on developing advanced hybrid J-aggregate nanostructures. The primary objectives are to: Investigate how silica matrices influence the brightness, stability, and excitonic behavior of J-aggregate fluorophores, and explore solvent tunability through surface...
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The Massachusetts Institute of Technology (MIT) received a $1.2 million Project Grant award from the National Science Foundation (NSF) to conduct collaborative research under the Mathematical and Physical Sciences program (CFDA 47.049). The four-year award, made on October 1, 2021 and running through September 30, 2025, will support MIT's "Designer 3D Mesoscale Materials Synthesized in the Self-Assembly Foundry" project. This project aims to advance the design and synthesis of...
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The Massachusetts Institute of Technology (MIT) received a $480,000 Project Grant award from the National Science Foundation Division of Chemistry to support research efforts titled "Designing Bright and Fast Fluorophores with Large Stokes' Shifts Based on Superrradiant Molecular J-Aggregates" from July 1, 2021 to June 30, 2024. The grant funding will support MIT's work to promote progress in the mathematical and physical sciences through increasing the store of scientific knowledge and enhancing understanding of major problems confronting the nation, as part of the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049). Specifically, the grant will fund MIT research to design new fluorescent dye molecules with increased brightness, speed, and Stokes shift through exploiting superrradiant effects in molecular J-aggregate structures. The work advances chemistry and materials science with the potential to impact biomedical imaging and other applications.

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