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Updated: Sep 10, 2025

Synthesis of pH Dependent Pyrazole, Imidazole, and Isoindolone Dipyrrinone Fluorophores using a Claisen-Schmidt Condensation Approach
Published on: June 10, 2021
Pyrrole-Imine Macrocycle: Self-Organizing Cross-Reactive Anion Receptor and Sensor
Austin R Sartori1, Sandra M George1, Aco Radujević1
1Chemistry Department, Bowling Green State University, Bowling Green, Ohio, 43403, USA.
None:
Self-organizing macrocyclic receptor-sensors for phosphorus oxyanions, phosphates, and phosphonates comprising imine moieties were prepared by condensation of dipyrrolylmethane dicarbaldehyde with diethylene triamine. The incorporation of flexible ethylene moieties endows the macrocycle with unprecedented flexibility and ability to accommodate numerous phosphorus oxyanions from orthophosphate to large anions such as ATP or phosphonate glyphosate. The anion binding was elucidated by NMR titrations, low-temperature NMR, and NOESY NMR. The incorporation of dansyl fluorophore enables sensing of anions using the fluorescence signal, whereas the changes in fluorescence intensity, width of the fluorescence band, and position of the maxima are analyte-specific and useful in recognition and identification of eleven different P-oxyanions in water. The affinity (Kassoc) for Na+ salts was H2PO4 - ≈ Methylphosphonate > H2P2O7 2- > Phenylphosphonate- > Glyphosate2- > AMP2- > ADP2- > ATP2-. Interestingly, phosphonates, including methylphosphonate and glyphosate anions, were also found to display a strong affinity (Kassoc ∼106 M-1) while halides, nitrate, carbonates, or hydrogen sulfate did not show a significant affinity. The determined fluorescence spectral parameters were used to classify the 12 analytes (11 anions and water) using Linear Discriminant Analysis (LDA). Quantification was performed using LDA and Support Vector Machine (SVM), and the phosphonate concentrations in unknown samples were determined with an error of 3.5% or lower.
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