Ratiometric Fluorescence Probe Based on Deep-Red Emissive CdTe Quantum Dots and Eu3+ Hybrid for Oxytetracycline Detection
Abstract
:1. Introduction
2. Experimental
2.1. Materials and Instrumentation
2.2. Synthesis of CdTe QDs
2.3. OTC Detection
2.4. OTC Recovery Experiment
3. Results and Discussion
3.1. Characterization of CdTe QDs
3.2. Ratiometric Fluorometric Detection for OTC
3.3. Mechanism of OTC Detection
3.4. Time and pH-Dependent Response
3.5. Selectivity and Anti-Interference
3.6. Real Samples Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Probe | Fluorescence Signal | Analyte | Wavelength (nm) | Time (min) | LOD (nM) | Reference |
---|---|---|---|---|---|---|
CdS QDs | Turn off | TC | 535 | 5 | 7.78 | [31] |
NIR-CDs | Turn off | TC, OTC, DC, ClTC | 680 | 60 | 500 | [32] |
UJN-Cu2 | Turn off | TC | 578 | None | 2.30 × 103 | [33] |
DPA-Ce-GMP-Eu | Ratiometric | TC | 415; 615 | 2 | 6.6 | [34] |
N,S-CDs | Turn off | TC, ClTC, OTC, | 440 | None | 15.6, 36.4, 40.7 | [35] |
Cu-CDs–COOH–Eu | Ratiometric | TC | 467, 625 | 1 | 36.1 | [36] |
CDs-AP | Turn off | TC | 488 | 10 | 0.7 | [37] |
R-CDs | Turn on | TC, OTC, ClTC | 612 | 2 | 12, 23, 25 | [38] |
g-C3N4/Eu3+ | Ratiometric | TC | 441, 618 | 10 | 6.5 | [39] |
S,N-CDs | Turn off | TC, DC, OTC | 440 | 0.5 | 250, 390, 260 | [40] |
Ce-N-CDs | Turn off | DC | 440 | 5 | 250 | [41] |
CdTe QDs-Eu3+ | Ratiometric | OTC | 617, 698 | 0.67 | 5.4 | This work |
Practical Samples | Added (μM) | Detected (μM) | Recovery (%) | RSD (n = 3) |
---|---|---|---|---|
River water | 3 | 3.04 | 101.3 | 0.046 |
5 | 5.19 | 103.8 | 0.145 | |
8 | 7.51 | 93.9 | 0.176 | |
Tap water | 3 | 3.37 | 112.3 | 0.141 |
5 | 5.15 | 103.0 | 0.095 | |
8 | 7.73 | 96.6 | 0.130 |
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Tan, S.; Wang, Q.; Tan, Q.; Zhao, S.; Huang, L.; Wang, B.; Song, X.; Lan, M. Ratiometric Fluorescence Probe Based on Deep-Red Emissive CdTe Quantum Dots and Eu3+ Hybrid for Oxytetracycline Detection. Chemosensors 2023, 11, 62. https://doi.org/10.3390/chemosensors11010062
Tan S, Wang Q, Tan Q, Zhao S, Huang L, Wang B, Song X, Lan M. Ratiometric Fluorescence Probe Based on Deep-Red Emissive CdTe Quantum Dots and Eu3+ Hybrid for Oxytetracycline Detection. Chemosensors. 2023; 11(1):62. https://doi.org/10.3390/chemosensors11010062
Chicago/Turabian StyleTan, Siyi, Qin Wang, Qiuxia Tan, Shaojing Zhao, Lei Huang, Benhua Wang, Xiangzhi Song, and Minhuan Lan. 2023. "Ratiometric Fluorescence Probe Based on Deep-Red Emissive CdTe Quantum Dots and Eu3+ Hybrid for Oxytetracycline Detection" Chemosensors 11, no. 1: 62. https://doi.org/10.3390/chemosensors11010062
APA StyleTan, S., Wang, Q., Tan, Q., Zhao, S., Huang, L., Wang, B., Song, X., & Lan, M. (2023). Ratiometric Fluorescence Probe Based on Deep-Red Emissive CdTe Quantum Dots and Eu3+ Hybrid for Oxytetracycline Detection. Chemosensors, 11(1), 62. https://doi.org/10.3390/chemosensors11010062