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A thiourea-bridged quinoline-naphthalene fluorescent chemosensor for selective Cu2+ detection: Application in real
T Johny Dathees1, G Narmatha2, J Prabhu2
1Fluorensic Materials Lab, Division of Physical Science, Karunya Institute of Technology and Sciences, (Deemed-to-be University), Karunya Nagar, Coimbatore 641 114, India; PG and Research Center of Chemistry, Jayaraj Annapackiam College for Women (Autonomous), Periyakulam 625601, Theni, India.
Abstract:
A urea-based fluorescent chemosensor, ITCQ, was developed for the selective detection of Cu2+ ions in a DMSO/H₂O (1:1, v/v) medium buffered with 50 mM HEPES at pH 7.4. Upon excitation at 350 nm, Cu2+ induced a marked fluorescence quenching via an intramolecular charge transfer (ICT) mechanism. Probe ITCQ demonstrated high selectivity for Cu2+ over other metal ions, as confirmed by competitive binding studies. Stern-Volmer analysis yielded a quenching constant of 3 × 104 M-1, with a low detection limit of 2.23 nM and a quantification limit of 7.45 nM. Job's plot, along with HRMS, IR, and 1H NMR titration, confirmed a 1:1 binding stoichiometry. The sensor exhibited excellent reversibility and reusability, supporting its practical utility. Real sample analyses, including water and food matrices, validated its effectiveness. Additionally, swab and paper strip assays demonstrated strong potential for portable, on-site Cu2+ monitoring. With a good sensitivity, selectivity, and field applicability, probe ITCQ marks a meaningful advancement in metal ion sensing.

