Laha Paltan, Ghosh Subhrajyoti, Sk Mostakim, Biswas Shyam
Department of Chemistry, Indian Institute of Technology Guwahati, 781039 Assam, India.
Department of Chemical Science, Indian Institute of Science Education and Research Berhampur, Main Campus, 760003, India.
Analyst. 2025 May 27;150(11):2375-2387. doi: 10.1039/d5an00190k.
The widespread use of pesticides, herbicides, and therapeutic drugs has raised significant concerns due to their potential toxic effects, especially when misused or overused. These contaminants pose risks to both environmental and human health, necessitating the development of highly sensitive and reliable detection methods for their quantitative analysis in wastewater, food, and biological fluids. Existing detection techniques often suffer from limitations such as low sensitivity, slow response times, and interference from other substances present in complex matrices. Therefore, there is a critical need for advanced sensing platforms that can rapidly and selectively detect these harmful compounds with high precision. A luminescent metal-organic framework (MOF) can serve as an efficient fluorometric sensor for detection of toxic analytes. A novel benzofuran based Zr(IV)-MOF-based probe was synthesized and characterized properly. Fluorescence quenching efficiency, detection limits, response time, and selectivity of the MOF towards DCZ and ORZ were evaluated through experimental studies. Additionally, the sensor's real-world applicability was tested in various environmental and biological samples, including serum, urine, and wastewater, under different pH conditions. Computational studies were also performed to elucidate the fluorescence quenching mechanism. The developed fluorometric sensor exhibited remarkable quenching efficiencies of 90% for DCZ and 80% for ORZ which demonstrate high sensitivity with detection limits of 57 nM and 60 nM, respectively. The Stern-Volmer constants () were calculated as 1.85 × 10 M for ORZ and 1.52 × 10 M for DCZ, indicating strong analyte interactions. The probe showed a rapid response time of 10 s for both analytes and exhibited excellent selectivity against potential interferents. Thus, this study presents the first fluorometric-based dual probe specifically designed for DCZ and ORZ detection. The sensor's high sensitivity, rapid response, and strong selectivity make it a promising tool for monitoring hazardous analytes in environmental and biological settings. The insights gained from experimental and computational analyses further support the practical utility of this Zr-based MOF sensor in real-world applications.
农药、除草剂和治疗药物的广泛使用因其潜在的毒性作用而引发了重大关注,尤其是在滥用或过度使用的情况下。这些污染物对环境和人类健康都构成风险,因此需要开发高度灵敏且可靠的检测方法,用于对废水、食品和生物体液中的这些污染物进行定量分析。现有的检测技术常常存在诸如灵敏度低、响应时间长以及受复杂基质中其他物质干扰等局限性。因此,迫切需要能够快速、选择性地高精度检测这些有害化合物的先进传感平台。发光金属有机框架(MOF)可作为检测有毒分析物的高效荧光传感器。合成并恰当表征了一种新型基于苯并呋喃的Zr(IV)-MOF探针。通过实验研究评估了该MOF对双氯芬酸(DCZ)和奥沙拉秦(ORZ)的荧光猝灭效率、检测限、响应时间和选择性。此外,还在不同pH条件下,对包括血清、尿液和废水在内的各种环境和生物样品测试了该传感器在实际应用中的适用性。还进行了计算研究以阐明荧光猝灭机制。所开发的荧光传感器对DCZ和ORZ分别表现出90%和80%的显著猝灭效率,分别具有57 nM和60 nM的检测限,证明了其高灵敏度。奥沙拉秦的斯特恩-沃尔默常数()计算为1.85×10 M,双氯芬酸的为1.52×10 M,表明分析物之间有强相互作用。该探针对两种分析物的响应时间均为10 s,且对潜在干扰物表现出优异的选择性。因此,本研究展示了首个专门设计用于检测DCZ和ORZ的基于荧光的双探针。该传感器的高灵敏度、快速响应和强选择性使其成为监测环境和生物环境中有害分析物的有前景的工具。从实验和计算分析中获得的见解进一步支持了这种基于Zr的MOF传感器在实际应用中的实用性。