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Published on: October 8, 2019
Responsive Supramolecular Sensors Based on Pillar[5]arene-BTD Complexes for Aqueous Sensing: From Static Quenching to
Débora Kélen Silva da Conceição1,2, Yasmin Petter daVeiga2, Claudiana Dotti2
1Laboratory of Molecular Catalysis, Universidade Federal do Rio Grande do Sul, Porto Alegre, Rio Grande do Sul 90010-150, Brazil.
Abstract:
We report the design and investigation of supramolecular guest-host systems based on cationic pillar[5]-arene macrocycles and fluorescent 2,1,3-benzothiadiazole (BTD) derivatives. The BTD guests, obtained through Sonogashira cross-coupling, display intense visible emission, large Stokes shifts, and strong solvatochromism, while the pillar[5]-arene hosts enable selective recognition in aqueous media. Spectrofluorimetric titrations and NMR experiments revealed the formation of 1:1 inclusion complexes between dianionic BTD derivatives and cationic pillar[5]-arenes, with binding constants on the order of 105 M-1. Static fluorescence quenching was observed upon complexation, in agreement with molecular docking simulations (ΔG ≈ -8.5 kcal mol-1) that highlighted the role of electrostatic and π-π interactions. Proof-of-concept sensing studies demonstrated that competitive binding of anions or DNA induces disassembly of the nonemissive BTD 4⊂P-[5]-A complex, restoring the intrinsic fluorescence of the guest. These results establish pillar[5]-arene-BTD assemblies as promising supramolecular platforms for responsive fluorescence sensing in aqueous environments.
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