AI Article Synopsis

  • Two diradicaloid systems were developed from oxidizing a specific aza-BODIPY core, which were thoroughly characterized using various experimental and computational techniques.
  • The ground state in solution is believed to be diamagnetic (stable), while at room temperature, the solid-state exhibits a mix of excited states and characters.
  • Fast excited state deactivation and solvent-dependent diradical character were observed, with the system able to transition through different states via single-electron reductions or deprotonation.

Article Abstract

We have prepared and characterized two diradicaloid systems and that originated from the oxidation of a 1,7-(4-(2,6-di--butyl)phenol)-substituted aza-BODIPY core. The aza-BODIPY diradicaloids were characterized by a large array of experimental and computational methods. The diamagnetic closed-shell state was postulated as the ground state in solution and a solid-state with the substantial thermal population originating from both open-shell diradical and open-shell triplet states observed at room temperature. Transient absorption spectroscopy indicates fast (<10 ps) excited state deactivation pathways associated with the target compounds' diradical character in solution at room temperature. Variable-temperature H NMR spectra indicate the solvent dependency of the diradical character in and . The diradicaloids could be stepwise reduced to the mixed-valence radical-anion and dianion states upon consequent single-electron reductions. Similarly, deprotonated 1,7-(4-(2,6-di--butyl)phenol)-substituted aza-BODIPYs can be oxidized to the diradicaloid form. Both mixed-valence and dianionic forms exhibit an intense absorption in the NIR region. Density functional theory (DFT) and time-dependent DFT calculations were used to explain the transformations in the UV-Vis-NIR spectra of all target compounds.

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http://dx.doi.org/10.1021/acs.inorgchem.4c04409DOI Listing

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Article Synopsis
  • Two diradicaloid systems were developed from oxidizing a specific aza-BODIPY core, which were thoroughly characterized using various experimental and computational techniques.
  • The ground state in solution is believed to be diamagnetic (stable), while at room temperature, the solid-state exhibits a mix of excited states and characters.
  • Fast excited state deactivation and solvent-dependent diradical character were observed, with the system able to transition through different states via single-electron reductions or deprotonation.
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