Zhou Liang, Chen Siyu, Qiu Yunliang, Wang Huifang, Sun Gengzhi, Kong Jinming, Zhang Xueji
School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing, 210094, Jiangsu, China.
Department of Criminal Science and Technology, Nanjing Police College, Nanjing, 210023, China.
Mikrochim Acta. 2025 Jun 3;192(7):396. doi: 10.1007/s00604-025-07223-9.
Flunitrazepam is a new psychoactive substance and belongs to the third generation of drugs with strong sedative and hypnotic effects, capable of causing "paraphilic amnesia." In recent years, flunitrazepam has been smuggled and trafficked in the form of disguised imported pills and has been strongly linked to cases of drug-facilitated sexual assault, presenting a significant threat to public safety and social stability. However, the lack of sensitivity and timeliness in existing detection methods makes it challenging to combat flunitrazepam effectively in judicial practice. To address this issue, this study presents an ITO/MXene/CB[8] electrochemical sensor platform that employs a host-guest strategy to achieve highly sensitive detection of flunitrazepam. The sensor leverages the high conductivity of MXene-TiCT nanomaterials to enhance detection sensitivity, while the highly selective capture of flunitrazepam by cucurbit[8] macrocyclic molecules ensures precise target detection. Demonstrating good linearity (R = 0.996) over the concentration range 20 nM to 80 µM, the platform exhibited a LOD of 1.27 nM and a sensitivity value of 14.948 µA·µM·cm, outperforming most existing electrochemical detection methods. Additionally, its practical applicability was validated through the detection of artificial urine samples. These results suggest that the sensor holds substantial promise for flunitrazepam detection and could be valuable in forensic applications.
氟硝西泮是一种新型精神活性物质,属于第三代具有强烈镇静催眠作用的药物,能够导致“顺行性遗忘”。近年来,氟硝西泮以伪装进口药丸的形式被走私和贩运,并且与药物辅助性性侵案件紧密相关,对公共安全和社会稳定构成重大威胁。然而,现有检测方法缺乏灵敏度和及时性,使得在司法实践中有效打击氟硝西泮具有挑战性。为解决这一问题,本研究提出了一种ITO/MXene/CB[8]电化学传感器平台,该平台采用主客体策略实现对氟硝西泮的高灵敏度检测。该传感器利用MXene-TiCT纳米材料的高导电性来提高检测灵敏度,同时葫芦[8]大环分子对氟硝西泮的高度选择性捕获确保了目标检测的精确性。该平台在20 nM至80 μM的浓度范围内表现出良好的线性(R = 0.996),检测限为1.27 nM,灵敏度值为14.948 μA·μM·cm,优于大多数现有的电化学检测方法。此外,通过对人工尿液样本的检测验证了其实际适用性。这些结果表明,该传感器在氟硝西泮检测方面具有很大的前景,并且在法医应用中可能具有重要价值。