<p>Based on Hg<sup>2+</sup>-triggered deselenation-hydrolysis self-immolative reaction, a novel colorimetric and ratiometric fluorescent probe <b>L-1</b> for Hg<sup>2+</sup> detection was fabricated. <b>L-1</b> had maximum absorption and fluorescence emission peaks at 496&#xa0;nm and 648&#xa0;nm respectively. Upon reaction with Hg<sup>2+</sup>, these peaks underwent a marked blue shift to 386&#xa0;nm and 528&#xa0;nm respectively. Concurrently, the solution colors of <b>L-1</b> displayed a color transition: from pink to colorless under natural light, and from red to green under a 365&#xa0;nm UV lamp. Notably, <b>L-1</b> enabled colorimetric and ratiometric detection of Hg<sup>2+</sup> via the fluorescence intensity ratio (F<sub>528 nm</sub>/F<sub>648 nm</sub>), featuring a large Stokes shift (152&#xa0;nm), rapid response (6&#xa0;min), favorable sensitivity (LOD = 0.4 µM), and excellent selectivity against other coexisting metal ions. Furthermore, <b>L-1</b> was successfully employed for detecting Hg<sup>2+</sup> in real water samples, such as river water, tap water and drinking water. Most importantly, by integrating the concentration-dependent color gradient of Hg<sup>2+</sup> with a smartphone application for red-green-blue (RGB) analysis, we established an instrument-free platform for rapid on-site Hg<sup>2+</sup> detection.</p>

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A Large Stokes Shift Reaction-Based Colorimetric and Ratiometric Fluorescent Probe for Hg2+ Detection and its Applications in Real Sample and Smartphone Device

  • Sheng Li,
  • Dongjian Zhu,
  • Yufei Zhang,
  • Panhui Wei,
  • Tong Chen,
  • Aishan Ren

摘要

Based on Hg2+-triggered deselenation-hydrolysis self-immolative reaction, a novel colorimetric and ratiometric fluorescent probe L-1 for Hg2+ detection was fabricated. L-1 had maximum absorption and fluorescence emission peaks at 496 nm and 648 nm respectively. Upon reaction with Hg2+, these peaks underwent a marked blue shift to 386 nm and 528 nm respectively. Concurrently, the solution colors of L-1 displayed a color transition: from pink to colorless under natural light, and from red to green under a 365 nm UV lamp. Notably, L-1 enabled colorimetric and ratiometric detection of Hg2+ via the fluorescence intensity ratio (F528 nm/F648 nm), featuring a large Stokes shift (152 nm), rapid response (6 min), favorable sensitivity (LOD = 0.4 µM), and excellent selectivity against other coexisting metal ions. Furthermore, L-1 was successfully employed for detecting Hg2+ in real water samples, such as river water, tap water and drinking water. Most importantly, by integrating the concentration-dependent color gradient of Hg2+ with a smartphone application for red-green-blue (RGB) analysis, we established an instrument-free platform for rapid on-site Hg2+ detection.