<p>This work utilized silver nanoparticles (AgNPs) capped with both tetraethylenepentamine (TEPA) and quaternized tetraethylenepentamine (Q-TEPA) as stabilizer and selective recognition element for Hg<sup>2+</sup> over competing metal ions (Fe<sup>2+</sup>, Fe<sup>3+</sup>, Zn<sup>2+</sup>, Cu<sup>2+</sup>, Pb<sup>2+</sup>, Cr<sup>3+</sup>, Ni<sup>2+</sup>, Cd<sup>2+</sup>, Mn<sup>2+</sup>, As<sup>5+</sup>, Co<sup>2+</sup>, Al<sup>3+</sup>, La<sup>3+</sup>). The performance of Q-TEPA-AgNPs was compared to TEPA-AgNPs, demonstrating significantly higher selectivity for Hg<sup>2+</sup> detection. The effect of Q-TEPA concentration (1&#xa0;mM, 2&#xa0;mM, and 4&#xa0;mM) during the preparation of Q-TEPA-AgNPs on Hg<sup>2+</sup> selectivity, limit of detection (LOD), and limit of quantification (LOQ) was investigated. LOD and LOQ values of Q-TEPA(1&#xa0;mM)-AgNPs and Q-TEPA(2&#xa0;mM)-AgNPs were ~ 10&#xa0;µM and ~ 31&#xa0;µM, respectively. However, the linear detection range was wider for Q-TEPA(1&#xa0;mM)-AgNPs (spanning 20–150&#xa0;µM) compared to Q-TEPA(2&#xa0;mM)-AgNPs (20–100&#xa0;µM). LOD and LOQ of Q-TEPA(4&#xa0;mM)-AgNPs increased to ~ 20&#xa0;µM and ~ 60&#xa0;µM, respectively, with linear range between 20 and 100&#xa0;µM. Higher concentration of Q-TEPA enhanced Hg<sup>2+</sup> selectivity but adversely increased LOD and LOQ, and narrowed the linear detection range. The response is rapid: after Hg<sup>2+</sup> addition the plasmon band disappears within ≤ 12 s, enabling near-real-time visual readout. The nanosensor enabled highly selective Hg<sup>2+</sup> sensing and functions effectively under real-world conditions, with performance remaining consistent when tested using Hg<sup>2+</sup> spiked into tap water, confirming robustness against matrix interferences. This optimized Q-TEPA-AgNPs nanosensor offers a promising, selective, and practical approach for mercury detection in complex aqueous environments.</p>

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Quaternized tetraethylenepentamine-capped AgNPs for selective and rapid colorimetric detection of mercury(II) in water

  • Mansour D. Alharthi,
  • Khalid E. Alzahrani,
  • Abdullah M. Alswieleh

摘要

This work utilized silver nanoparticles (AgNPs) capped with both tetraethylenepentamine (TEPA) and quaternized tetraethylenepentamine (Q-TEPA) as stabilizer and selective recognition element for Hg2+ over competing metal ions (Fe2+, Fe3+, Zn2+, Cu2+, Pb2+, Cr3+, Ni2+, Cd2+, Mn2+, As5+, Co2+, Al3+, La3+). The performance of Q-TEPA-AgNPs was compared to TEPA-AgNPs, demonstrating significantly higher selectivity for Hg2+ detection. The effect of Q-TEPA concentration (1 mM, 2 mM, and 4 mM) during the preparation of Q-TEPA-AgNPs on Hg2+ selectivity, limit of detection (LOD), and limit of quantification (LOQ) was investigated. LOD and LOQ values of Q-TEPA(1 mM)-AgNPs and Q-TEPA(2 mM)-AgNPs were ~ 10 µM and ~ 31 µM, respectively. However, the linear detection range was wider for Q-TEPA(1 mM)-AgNPs (spanning 20–150 µM) compared to Q-TEPA(2 mM)-AgNPs (20–100 µM). LOD and LOQ of Q-TEPA(4 mM)-AgNPs increased to ~ 20 µM and ~ 60 µM, respectively, with linear range between 20 and 100 µM. Higher concentration of Q-TEPA enhanced Hg2+ selectivity but adversely increased LOD and LOQ, and narrowed the linear detection range. The response is rapid: after Hg2+ addition the plasmon band disappears within ≤ 12 s, enabling near-real-time visual readout. The nanosensor enabled highly selective Hg2+ sensing and functions effectively under real-world conditions, with performance remaining consistent when tested using Hg2+ spiked into tap water, confirming robustness against matrix interferences. This optimized Q-TEPA-AgNPs nanosensor offers a promising, selective, and practical approach for mercury detection in complex aqueous environments.