Hwa Kuo-Yuan, Santhan Aravindan, Ou Chun-Wei, Wang Cheng-Han
Department of Molecular Science and Engineering, National Taipei University of Technology, Taipei 10608, Taiwan.
Graduate Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei 10608, Taiwan.
Sensors (Basel). 2025 May 22;25(11):3266. doi: 10.3390/s25113266.
Nanocomposite hydroxypropyl-beta-cyclodextrin functionalized reduced graphene oxide sheets (HpβCD@rGOs) with zinc oxide flaky structures (ZnOFs) were synthesized. The ZnOFs/HpβCD@rGOs were first characterized to examine their physicochemical characteristics. The ZnOFs exhibited a highly crystalline structure intertwined with HpβCD@rGO sheets. The electrocatalyst experienced excellent electrochemical oxidation current responses toward melatonin (MTN). The interaction between the catalyst and MTN improves electrochemical activity through a synergistic action, which can be measured by a glassy carbon electrode (GCE) modified with ZnOFs/HpβCD@rGOs. This modified electrode with the increased reactive sites and a large electrochemically active surface area allows the rapid oxidation reaction of MTN. The oxidation of MTN was detected and measured with a linearity range around 0.014-0.149 and 1.149-643.341 (µM), with a low detection limit (LOD) of around 0.0105 µM or 10.5 nM. The sensitivity was around 6.19 μA μM cm. The constructed electrode demonstrated a notable level of selectivity to MTN when the interfering (biological) chemicals with a similar structure to MTN were introduced. The real samples were tested in order to examine whether the ZnOFs/HpβCD@rGOs/GCE can be developed for the biomedical monitoring of compounds. The results suggest that ZnOFs/HpβCD@rGOs/GCE can detect MTN in in vitro human samples. Furthermore, the cost-effectiveness, enhanced electrochemical capabilities, and easy fabrication of the electrode make the ZnOFs/HpβCD@rGOs composite a feasible solution for the future industrial development of monitoring tools as sensors.
合成了具有氧化锌片状结构(ZnOFs)的纳米复合羟丙基-β-环糊精功能化还原氧化石墨烯片(HpβCD@rGOs)。首先对ZnOFs/HpβCD@rGOs进行表征以考察其物理化学特性。ZnOFs呈现出与HpβCD@rGO片交织在一起的高度结晶结构。该电催化剂对褪黑素(MTN)表现出优异的电化学氧化电流响应。催化剂与MTN之间的相互作用通过协同作用提高了电化学活性,这可以通过用ZnOFs/HpβCD@rGOs修饰的玻碳电极(GCE)来测量。这种具有增加的反应位点和大的电化学活性表面积的修饰电极使得MTN能够快速发生氧化反应。MTN的氧化通过线性范围约为0.014 - 0.149和1.149 - 643.341(μM)进行检测和测量,检测限(LOD)约为0.0105 μM或10.5 nM。灵敏度约为6.19 μA μM cm。当引入与MTN结构相似的干扰(生物)化学物质时,构建的电极对MTN表现出显著的选择性水平。测试了实际样品,以检查ZnOFs/HpβCD@rGOs/GCE是否可用于化合物的生物医学监测。结果表明,ZnOFs/HpβCD@rGOs/GCE可以检测体外人体样品中的MTN。此外,该电极具有成本效益、增强的电化学性能以及易于制备的特点,使得ZnOFs/HpβCD@rGOs复合材料成为未来作为传感器的监测工具工业发展的可行解决方案。