<p>In this study, multi-element doped carbon dots (DXM-CDs) were synthesized via a one-step hydrothermal method, utilizing dexamethasone sodium phosphate (DXM) injection as a precursor. The synthesized DXM-CDs exhibited ultraviolet fluorescence emission at 380&#xa0;nm, with a fluorescence quantum yield (QY) of 19.7%. The fluorescence intensity of DXM-CDs was quenched via oxidative degradation using KBrO<sub>3</sub> in H<sub>3</sub>PO<sub>4</sub> medium. The presence of Ir<sup>4+</sup> ion catalyzed the oxidation of DXM-CDs using KBrO<sub>3</sub>, resulting in an accelerated fluorescence quenching. Based on this catalytic oxidation reaction, a kinetic fluorimetric method for the quantification of Ir<sup>4+</sup> ions was developed. The optimum conditions obtained are 0.4 M H<sub>3</sub>PO<sub>4</sub>, 2.0&#xa0;mg mL<sup>− 1</sup> of DXM-CDs, 1.0 mM KBrO<sub>3</sub>, reaction temperature of 100&#xa0;°C, and reaction time of 20&#xa0;min. Under optimized conditions, the method achieved a detection limit (3σ) of 14 pg mL<sup>− 1</sup> and linear response was observed in the concentration range of 0.2 to 20 ng mL<sup>− 1</sup>. The developed method was successfully applied to the determination of Ir<sup>4+</sup> ions in water samples, yielding accurate and precise results.</p>

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Kinetic Fluorimetric Determination of Iridium Based on the Catalytic Oxidation of Doped Carbon Dots

  • Guoqiang Xiang,
  • Shuangshuang Wang,
  • Lijun He,
  • Xiuming Jiang,
  • Renyong Zhao,
  • Peng Li

摘要

In this study, multi-element doped carbon dots (DXM-CDs) were synthesized via a one-step hydrothermal method, utilizing dexamethasone sodium phosphate (DXM) injection as a precursor. The synthesized DXM-CDs exhibited ultraviolet fluorescence emission at 380 nm, with a fluorescence quantum yield (QY) of 19.7%. The fluorescence intensity of DXM-CDs was quenched via oxidative degradation using KBrO3 in H3PO4 medium. The presence of Ir4+ ion catalyzed the oxidation of DXM-CDs using KBrO3, resulting in an accelerated fluorescence quenching. Based on this catalytic oxidation reaction, a kinetic fluorimetric method for the quantification of Ir4+ ions was developed. The optimum conditions obtained are 0.4 M H3PO4, 2.0 mg mL− 1 of DXM-CDs, 1.0 mM KBrO3, reaction temperature of 100 °C, and reaction time of 20 min. Under optimized conditions, the method achieved a detection limit (3σ) of 14 pg mL− 1 and linear response was observed in the concentration range of 0.2 to 20 ng mL− 1. The developed method was successfully applied to the determination of Ir4+ ions in water samples, yielding accurate and precise results.