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Single-Molecule Magnetoluminescence from a Spatially Confined Persistent Diradical Emitter. | LitMetric

Single-Molecule Magnetoluminescence from a Spatially Confined Persistent Diradical Emitter.

J Am Chem Soc

Department of Life and Coordination-Complex Molecular Science, Institute for Molecular Science, 5-1 Higashiyama, Myodaiji, Okazaki, Aichi 444-8787, Japan.

Published: June 2023

AI Article Synopsis

  • - Luminescent radicals are new materials with unique light-emitting properties due to their open-shell electronic structure, which allows them to have functions not present in traditional closed-shell molecules.
  • - One exciting function is magnetoluminescence (ML), where the radical's luminescence is influenced by a magnetic field, making it significant for spin photonics.
  • - This study demonstrates that a covalently linked luminescent radical dimer can exhibit ML as a distinct property, which could help understand the mechanisms behind ML and guide the creation of new ML-active radicals through synthetic chemistry.

Article Abstract

Luminescent radicals are an emerging class of materials that exhibit unique photofunctions not found in closed-shell molecules due to their open-shell electronic structure. Particularly promising are photofunctions in which radical's spin and luminescence are correlated; for example, when a magnetic field can affect luminescence (i.e., magnetoluminescence, ML). These photofunctions could be useful in the new science of spin photonics. However, previous observations of ML in radicals have been limited to systems in which radicals are randomly doped in host crystals or polymerized through metal complexation. This study shows that a covalently linked luminescent radical dimer (diradical) can exhibit ML as a single-molecular property. This facilitates detailed elucidation of the requirements for and mechanisms of ML in radicals and can aid the rational design of ML-active radicals based on synthetic chemistry.

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Source
http://dx.doi.org/10.1021/jacs.3c01076DOI Listing

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