Pawar Rohit V, Patil Pravin O, Khalid Mohammad, Wahab Shadma, Taleuzzaman Mohamad, Pardeshi Sagar R, Khan Zamir G
Department of Pharmaceutical Chemistry, H. R. Patel Institute of Pharmaceutical Education and Research, Dist. Dhule, Shirpur, Maharashtra, 425405, India.
Department of Pharmacognosy, College of Pharmacy, Prince Sattam Bin Abdulaziz University, Al-Kharj, 11942, Saudi Arabia.
J Fluoresc. 2025 May 27. doi: 10.1007/s10895-025-04372-1.
Carbendazim (CBZ), a widely used agricultural fungicide, poses significant health risks due to its potential for endocrine disruption, infertility, and liver damage. Ensuring food safety and compliance with environmental regulations necessitates sensitive and reliable detection methods. This study introduces a novel, ultrasensitive CBZ detection strategy using nitrogen and sulfur co-doped carbon quantum dots (N-S@CQDs) as fluorescent nanosensors. These N-S@CQDs are synthesized via an environmentally friendly hydrothermal process, utilizing citric acid and thiourea as precursors. The detection platform operates through a "turn-off-on" fluorescence mechanism. Initially, Fe³⁺ ions quench the fluorescence of N-S@CQDs, which is then restored upon CBZ binding. This system achieves an ultralow detection limit of 27.84 ng/mL and a linear response range of 0-100 ng/mL, making it ideal for trace-level analysis in food bioscience applications. The sensor was validated on real food samples, yielding impressive recovery rates of 96.9 to 99.36%. The method demonstrates excellent selectivity, rapid response, and cost-efficiency, making it a powerful tool for real-world applications. This study not only advances the field of CBZ detection but also opens doors to safer, more sustainable practices in agriculture and food safety. The developed method offers a sustainable and cost-effective solution for monitoring CBZ residues in food safety programs and environmental surveillance initiatives, addressing critical challenges in pesticide detection.
多菌灵(CBZ)是一种广泛使用的农业杀菌剂,因其具有内分泌干扰、导致不孕和肝损伤的潜在风险,对健康构成重大威胁。确保食品安全并遵守环境法规需要灵敏且可靠的检测方法。本研究介绍了一种新型的超灵敏CBZ检测策略,该策略使用氮硫共掺杂碳量子点(N-S@CQDs)作为荧光纳米传感器。这些N-S@CQDs通过环境友好的水热法合成,以柠檬酸和硫脲作为前驱体。该检测平台通过“关-开”荧光机制运行。最初,Fe³⁺离子淬灭N-S@CQDs的荧光,然后在CBZ结合后荧光恢复。该系统实现了27.84 ng/mL的超低检测限和0-100 ng/mL的线性响应范围,使其非常适合食品生物科学应用中的痕量分析。该传感器在实际食品样品上得到验证,回收率高达96.9%至99.36%。该方法具有出色的选择性、快速响应和成本效益,是实际应用中的有力工具。本研究不仅推动了CBZ检测领域的发展,还为农业和食品安全领域更安全、更可持续的实践打开了大门。所开发的方法为食品安全计划和环境监测举措中的CBZ残留监测提供了一种可持续且经济高效的解决方案,解决了农药检测中的关键挑战。