<p>In this work we have successfully designed and synthesized a fluorescence “turn-on” chemosensor, <b>TS-1</b>. The structure of <b>TS-1</b> was thoroughly investigated using <sup>1</sup>H NMR, FT-IR, and fluorescence spectroscopy&#xa0;was used for confirming its suitability for sensing applications. <b>TS-1</b> exhibited a significant fluorescence enhancement upon binding with Hg<sup>2+</sup> in a MeOH/H<sub>2</sub>O (5:95, v/v) solvent system, demonstrating high selectivity when tested against various competing metal ions, including Pb<sup>2+</sup>, Ca<sup>2+</sup>, Na<sup>+</sup>, Zn<sup>2+</sup>, Al<sup>3+</sup>, Cu<sup>2+</sup>, Ni<sup>2+</sup>, Mg<sup>2+</sup>, Cd<sup>2+</sup>, Mn<sup>2+</sup>, Co<sup>2+</sup>, Cr<sup>3+</sup>, Ag<sup>+</sup>, and K<sup>+</sup>. The sensing mechanism of <b>TS-1</b> was explored in detail using fluorescence spectroscopy and Job’s plot analysis. The results indicated the formation of a strong complex between <b>TS-1</b> and Hg<sup>2+</sup> ions, leading to the disruption of a photoinduced electron transfer (PET) process resulting in fluorescence enhancement. <b>TS-1</b> demonstrated exceptional sensitivity, with a detection limit as low as 0.0029&#xa0;µg mL<sup>−1</sup>, making it highly suitable for detecting trace levels of Hg<sup>2+</sup> in aqueous media. The robust performance of <b>TS-1</b> highlights its potential as an effective chemosensor for the detection of Hg<sup>2+</sup>. To validate the practical applicability of <b>TS-1</b>, recovery experiments were conducted using environmental and agricultural samples spiked with Hg<sup>2+</sup> ions. The method achieved impressive recovery ranging from 93.00 ± 0.14% to 104.00 ± 0.54%, confirming its accuracy and reliability across diverse sample matrices.&#xa0;</p>

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Ultrasensitive Fluorimetric Detection of Hg2+ Using a Thiourea-Based Chemosensor

  • Sikandar Khan,
  • Mian Muhammad,
  • Eid H. Alosaimi,
  • Hamed M. Al-Saidi,
  • Jari S. Algethami,
  • Mohsen A. M. Alhamami

摘要

In this work we have successfully designed and synthesized a fluorescence “turn-on” chemosensor, TS-1. The structure of TS-1 was thoroughly investigated using 1H NMR, FT-IR, and fluorescence spectroscopy was used for confirming its suitability for sensing applications. TS-1 exhibited a significant fluorescence enhancement upon binding with Hg2+ in a MeOH/H2O (5:95, v/v) solvent system, demonstrating high selectivity when tested against various competing metal ions, including Pb2+, Ca2+, Na+, Zn2+, Al3+, Cu2+, Ni2+, Mg2+, Cd2+, Mn2+, Co2+, Cr3+, Ag+, and K+. The sensing mechanism of TS-1 was explored in detail using fluorescence spectroscopy and Job’s plot analysis. The results indicated the formation of a strong complex between TS-1 and Hg2+ ions, leading to the disruption of a photoinduced electron transfer (PET) process resulting in fluorescence enhancement. TS-1 demonstrated exceptional sensitivity, with a detection limit as low as 0.0029 µg mL−1, making it highly suitable for detecting trace levels of Hg2+ in aqueous media. The robust performance of TS-1 highlights its potential as an effective chemosensor for the detection of Hg2+. To validate the practical applicability of TS-1, recovery experiments were conducted using environmental and agricultural samples spiked with Hg2+ ions. The method achieved impressive recovery ranging from 93.00 ± 0.14% to 104.00 ± 0.54%, confirming its accuracy and reliability across diverse sample matrices.