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Carbon quantum dot fluorescent sensors for tetracycline detection: Quenching mechanisms, signal strategies, and analytical reliability in complex matrices

Ghada Al-AssiFaculty of Allied Medical Sciences, Hourani Center for Applied Scientific Research, Al-Ahliyya Amman University, Amman, JordanTahani Abdul aziz jaffar AlsandookCollege of Dental Medicine, Department of Dental Medicine, AL-Turath University, Baghdad, IraqIrwanjot KaurDepartment of Chemistry & Biochemistry, Sharda School of Engineering & Sciences, Sharda University, Greater Noida, IndiaAhmed AldulaimiCollege of Food Sciences, Al-Qasim Green University, Babylon, IraqMaha Mohammed TawfiqDepartment of Optics Techniques, health and medical techniques college, Alnoor University, Mosul, IraqK. K. ThakurDepartment of Chemistry, University Institute of Sciences, Chandigarh University, Mohali, Punjab, IndiaKhushnud AzizjanovDepartment of Natural Sciences, Ma'mun University, Khiva, UzbekistanBabamuratov BekzodDepartment of Medicine, Termez University of Economics and Service, Termez, UzbekistanShayan MahmoodiYoung Researchers and Elite Club, Tehran Branch, Islamic Azad University, Tehran, Iran
2026en
ABI

Аннотация

Turn-off fluorescent carbon quantum dot (CQD)-based sensors have emerged as highly efficient analytical platforms for tetracycline detection in complex food and environmental matrices. This review examines recent advances in CQD design and their fluorescence quenching behaviors, with a particular focus on mechanistic pathways governing signal attenuation. The dominant quenching processes, including the inner filter effect, static and dynamic quenching, charge transfer interactions, and aggregation-induced effects, are systematically analyzed in relation to their analytical implications. Special attention is given to how heteroatom doping, surface functionalization and structural heterogeneity influence emission properties and sensing performance. The review further evaluates the analytical performance of CQD-based turn-off systems in real sample environments such as milk, serum, honey, and environmental water, highlighting both their strengths in sensitivity and rapid response, as well as their limitations in terms of matrix interference, reproducibility, and calibration reliability. Despite significant progress, inconsistencies in mechanistic interpretation and lack of standardization remain key barriers to quantitative robustness. Overall, this work provides an integrated perspective on the relationship between photophysical quenching mechanisms and analytical outcomes, emphasizing the need for more rigorously designed CQD systems to achieve reliable tetracycline monitoring in complex matrices.

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