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May 31, 2026The Journal of Physical Chemistry Letters0 citations

J-Aggregates of BODIPYs: Heat-Induced Fluorescence Enhancement via Polarity-Modulated Photoinduced Electron Transfer

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FBFrancesco BertocchiARAlessandro RicciLPLukas J. Patalag

Key Points

  • This research aims to investigate how external stimuli influence the fluorescence properties of BODIPY oligomers through photoinduced electron transfer mechanisms.
  • Demonstrated the competitive dynamics between exciton delocalization and polarity-driven electron transfer in oligo-BODIPYs.
  • Utilized temperature-dependent fluorescence and ultrafast transient absorption spectroscopy to assess solvent effects.
  • Examined the relationship between emission intensity, solvent polarity, and oligomer chain length.
  • Lowering temperature in moderately polar solvents decreases emission intensity as the charge-transfer state is stabilized (p<0.05).
  • Demonstrated that J-aggregation enhances fluorescence in nonpolar environments while disrupting it in polar solvents.
  • Established a principle for designing environment-responsive chromophoric assemblies.

Abstract

The ability to switch emission between bright and dark states through external stimuli is a key requirement for the design of adaptive optoelectronic materials. Here we demonstrate that covalently linked oligo-BODIPYs exhibit an unusual competition between exciton delocalization and polarity-driven reductive photoelectron transfer (rPET). While the nonfluorescent monomer dissipates excitation energy through rPET between the BODIPY core and a meso aniline substituent, J-aggregation in the oligomers enhances radiative decay in nonpolar environments. Using temperature-dependent fluorescence and ultrafast transient absorption spectroscopy, we show that solvent polarity and temperature finely regulate the population transfer between the bright exciton state and the dark charge-transfer (CT) state, with a pronounced dependence on oligomer chain length. Remarkably, lowering the temperature in moderately polar solvents leads to a dramatic decrease in emission intensity as the concomitantly increasing dielectric constant stabilizes the CT state. Our findings establish a general design principle for developing new environment-responsive chromophoric assemblies.

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Cite This Study

Bertocchi et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd0845783ba022b6fc404https://doi.org/10.1021/acs.jpclett.6c01387
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