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April 7, 2026Sensors0 citationsOpen Access

Naphthalimide Derivatives with Extended Heterocyclic Systems—Synthesis, Spectral and Sensing Properties

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HMHristo ManovIGIvo GrabchevYZYulian Zagranyarski

Key Points

  • To design and analyze π-extended naphthalimide derivatives as optical sensors for protons and metal cations, focusing on structural effects.
  • Synthesis of naphthalimide derivatives with benzofuran and benzodioxin annulations
  • Evaluation of photophysical properties through absorption and fluorescence spectroscopy
  • Sensing performance assessment via fluorescence titrations
  • Quantum chemistry calculations to rationalize experimental data
  • Benzofuran-annulated derivatives show strong fluorescence and structured absorption bands
  • Fluorescence quenching occurs via reductive photoinduced electron transfer (PET) when receptors are present
  • Protonation and metal ion coordination enhance fluorescence, especially with Cu(II) and Sn(II)
  • Benzodioxin derivatives exhibit low fluorescence and minimal sensing response due to their electronic structure

Abstract

The objective of this study was to design and evaluate π-extended 1,8-naphthalimide derivatives as photoinduced electron transfer (PET) optical sensors for protons and metal cations, with emphasis on the role of heterocyclic annulation and receptor–chromophore electronic matching. Benzofuran- and benzodioxin-annulated naphthalimides bearing either a dimethylaminoethyl receptor or a non-donating alkyl substituent at the imide nitrogen were synthesized using tailored synthetic strategies. Their photophysical properties were investigated by absorption and fluorescence spectroscopy, while sensing performance was evaluated by fluorescence titrations. Quantum chemistry calculations were employed to rationalize experimental observations. Benzofuran-annulated derivatives exhibit structured π–π* absorption bands and strong fluorescence, whereas introduction of the receptor induces efficient fluorescence quenching via reductive PET. Protonation or metal ion coordination suppresses PET and leads to pronounced fluorescence enhancement, particularly in the presence of Cu(II) and Sn(II). In contrast, benzodioxin-annulated derivatives display intramolecular charge-transfer absorption bands, large Stokes shifts, and low fluorescence quantum yields in polar media, resulting in a negligible sensing response. Computational results attribute this behavior to an unfavorable energy arrangement of the donor–acceptor orbitals. Overall, the study demonstrates that heterocyclic annulation critically governs the electronic structure and sensing performance of naphthalimide fluorophores, providing guidelines for the rational design of PET-based optical sensors.

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Cite This Study

Manov et al. (2026) studied this question.

synapsesocial.com/papers/69d49f8ab33cc4c35a2280a7https://doi.org/10.3390/s26072236
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