Wannassi Jassem, Missaoui Nadhem, Mabrouk Chama, Castilla-Martinez Carlos A, Moumen Youssra, Echouchene Fraj, Barhoumi Houcine, Demirci Umit B, Kahri Hamza
Laboratory of Interfaces and Advanced Materials, Faculty of Sciences, University of Monastir, 5019, Monastir, Tunisia.
IEM (Institut Européen des Membranes), UMR5635 (CNRS, ENSCM, UM), Université de Montpellier, Place Eugene Bataillon, CC047, Montpellier, France.
Chempluschem. 2025 Mar;90(3):e202400734. doi: 10.1002/cplu.202400734. Epub 2025 Feb 4.
In this paper, microporous Zn-based zeolitic imidazolate framework with the sodalite cage structure (SOD-ZIF-8) was synthesized by the solvothermal method. Powder X-ray diffraction (PXRD), scanning electron microscopy (SEM) and N adsorption were employed to characterize the synthesized material. An ultra-sensitive electrochemical sensor based on highly dispersed bimetallic Ni-Pt nanoparticles immobilized on zeolitic metal-organic framework ZIF-8 for dopamine quantification is introduced for the first time. The as-prepared Ni-Pt@ZIF-8 composite was deposited onto a glassy carbon electrode (GCE), serving as a sensor that exhibits superior properties for the detection of dopamine (DA). A Box-Behnken design was employed, and response surface methodology (RSM) was applied to investigate the impact of various experimental parameters on dopamine detection. The parameters optimized in this study included pH, drying time (hours), drop volume for deposition (μL), and accumulation time (minutes). The Box-Behnken experimental design enabled the systematic optimization of these factors to enhance the sensor's performance. Benefiting from the synergy of ZIF-8 and Ni-Pt bimetallic nanoparticles, the Ni-Pt@ZIF-8 composite exhibited high sensitivity towards dopamine, achieving a low detection limit of 1.0 nM. The sensor's linear response to dopamine (1 nM to 10 μM), resistance to interference, and high recovery in human serum, coupled with its simple fabrication, make it a promising tool for real-world dopamine detection.
本文采用溶剂热法合成了具有方钠石笼结构的微孔锌基金属有机骨架材料(SOD-ZIF-8)。利用粉末X射线衍射(PXRD)、扫描电子显微镜(SEM)和N吸附对合成材料进行了表征。首次介绍了一种基于固定在沸石金属有机骨架ZIF-8上的高度分散的双金属Ni-Pt纳米颗粒用于多巴胺定量的超灵敏电化学传感器。将制备的Ni-Pt@ZIF-8复合材料沉积在玻碳电极(GCE)上,作为一种对多巴胺(DA)检测具有优异性能的传感器。采用Box-Behnken设计,并应用响应面方法(RSM)研究了各种实验参数对多巴胺检测的影响。本研究中优化的参数包括pH值、干燥时间(小时)、沉积滴体积(μL)和富集时间(分钟)。Box-Behnken实验设计能够对这些因素进行系统优化,以提高传感器的性能。得益于ZIF-8和Ni-Pt双金属纳米颗粒的协同作用,Ni-Pt@ZIF-8复合材料对多巴胺表现出高灵敏度,实现了1.0 nM的低检测限。该传感器对多巴胺的线性响应(1 nM至10 μM)、抗干扰能力以及在人血清中的高回收率,再加上其简单的制备方法,使其成为实际多巴胺检测的有前途的工具。