Chaudhary Yogesh, Pobedinskas Paulius, Rouzbahani Rozita, Korneychuk Svetlana, Verbeeck Johan, Sankaran Kamatchi Jothiramalingam, Haenen Ken
CSIR-Institute of Minerals and Materials Technology, Bhubaneswar 751013, India.
Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.
Langmuir. 2025 Jun 24;41(24):15283-15291. doi: 10.1021/acs.langmuir.5c00686. Epub 2025 Jun 10.
Ensuring food security often requires the use of pesticides, which can lead to significant ecological and human health risks due to toxicity. Paraquat (PQ), one of the most dangerous herbicides, poses severe threats to human health, including organ failure and neurological damage. Electrochemical detection methods have demonstrated significant promise for accurate and sensitive detection of PQ. Nonetheless, conventional methods for fabricating electrodes are typically complex and time-consuming, which hinders their applicability in fast and efficient sensing systems. In this study, graphene-encapsulated diamond nanoneedles (GDNs) were synthesized as robust electrodes using a microwave plasma-enhanced chemical vapor deposition system. The microstructural analysis revealed that the diamond nanoneedles were encapsulated by graphene sheaths. The GDNs demonstrated desirable conductivity and electrochemical activity, attributed to the coexistence of the diamond and graphite phases. Using these GDN electrodes, differential pulsed anodic stripping voltammetry in a 0.1 M phosphate buffer solution enabled impressive detection of PQ, achieving a limit of detection as 0.002 μM and 2.97 μA/μM sensitivity at an optimal condition in the linearity range of 0.1-0.8 μM. The electrodes demonstrated high repeatability, selectivity, and remarkable recovery in real samples, including seawater and washed water from Amaranthus leaves, highlighting potential as a sensing material for the real-time monitoring of PQ.
确保粮食安全通常需要使用农药,而农药因毒性可能导致重大的生态和人类健康风险。百草枯(PQ)是最危险的除草剂之一,对人类健康构成严重威胁,包括器官衰竭和神经损伤。电化学检测方法已显示出对PQ进行准确和灵敏检测的巨大潜力。尽管如此,传统的电极制造方法通常复杂且耗时,这阻碍了它们在快速高效传感系统中的应用。在本研究中,使用微波等离子体增强化学气相沉积系统合成了石墨烯包裹的金刚石纳米针(GDNs)作为坚固的电极。微观结构分析表明,金刚石纳米针被石墨烯鞘包裹。GDNs表现出理想的导电性和电化学活性,这归因于金刚石相和石墨相的共存。使用这些GDN电极,在0.1 M磷酸盐缓冲溶液中进行差分脉冲阳极溶出伏安法能够对PQ进行令人印象深刻的检测,在0.1 - 0.8 μM的线性范围内,在最佳条件下实现了0.002 μM的检测限和2.97 μA/μM的灵敏度。这些电极在包括海水和苋菜叶冲洗水在内的实际样品中表现出高重复性、选择性和显著的回收率,突出了其作为PQ实时监测传感材料的潜力。