Abstract
Zinc levels in living organisms and the environment are vital to human health and the environment. Therefore, rapid and highly sensitive methods for detecting Zn2+ are required. Herein, a novel fluorescent probe (APYQ) was synthesized by a simple Schiff base reaction. APYQ exhibited high selectivity to detect Zn2+ without interference from other metal ions. The limit of detection (LOD) as low as 1.87 nM, and response time as fast as 5 s. These two indicators had the best overall performance compared to other Zn2+ probes over the past five years. Single crystals of APYQ and APYQ-Zn2+ complex were successfully obtained, indicating that the fluorescence enhancement induced by the large conjugated rigid plane structure of the complex may rationalize the superb detection limit. The intramolecular charge transfer (ICT) and chelation-enhanced fluorescence (CHEF) mechanism was proposed based on Job's plot, ESI-MS, NMR titration and DFT calculation. Moreover, APYQ possessed the capability to detect Zn2+ in water samples and test strips in a qualitative and quantitative manner. Furthermore, APYQ has been effectively used to detect Zn2+ intracellularly in Hela cells. This work provides a substantially enriched probe arsenal for the detection of Zn2+ with high sensitivity and fast response.
Original language | English |
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Article number | 112313 |
Journal | Microchemical Journal |
Volume | 208 |
DOIs | |
State | Published - Jan 2025 |
Keywords
- Fluorescent probe
- Quinoline derivatives
- Response time
- Sensitivity
- Zinc ion