Huang Na, Liu Meiling, Li Haitao, Zhang Youyu, Yao Shouzhuo
Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research (Ministry of Education), College of Chemistry and Chemical Engineering, Hunan Normal University, Changsha 410081, PR China.
Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research (Ministry of Education), College of Chemistry and Chemical Engineering, Hunan Normal University, Changsha 410081, PR China.
Anal Chim Acta. 2015 Jan 1;853:249-257. doi: 10.1016/j.aca.2014.10.016. Epub 2014 Oct 17.
In this paper, a novel electro-active graphene oxide (GO) nanocomposite was firstly prepared by covalently grafted (4-ferrocenylethyne) phenylamine (Fc-NH2) onto the surface of GO. The synthesized hybridized nanocomposite of GO-Fc-NH2 coupled with HAuCl4 simultaneously electrodeposited on the glassy carbon electrodes (GCE) to obtain rGO-Fc-NH2/AuNPs/GCE. The covalently grafted material of the rGO-Fc-NH2/AuNPs film can effectively prevent the electron mediator leaking from the electrode surface, which can hold the advantage of both the nanomaterials and electron mediator. By employing the catalysis effect of the nanomaterial and electron mediator coupling with large active surface area and high accumulation capacity of rGO-Fc-NH2/AuNPs, a synergetic signal amplification platform for ultra-sensitive detection of bisphenol A (BPA) was successfully established. With this novel sensor, the oxidation peak currents of BPA were linearly dependent on the BPA concentrations in the range of 0.005-10 μM with the detection limit of 2 nM. Modification of electron mediators on nanomaterials can greatly enhance the electrochemical performance of the sensors and will provide a new concept for fabricating newly electro-active nanomaterials-based electrochemical biosensors.
在本文中,首先通过将(4-二茂铁乙炔基)苯胺(Fc-NH2)共价接枝到氧化石墨烯(GO)表面制备了一种新型的电活性氧化石墨烯纳米复合材料。将合成的GO-Fc-NH2杂化纳米复合材料与HAuCl4同时电沉积在玻碳电极(GCE)上,得到rGO-Fc-NH2/AuNPs/GCE。rGO-Fc-NH2/AuNPs膜的共价接枝材料可以有效防止电子媒介体从电极表面泄漏,兼具纳米材料和电子媒介体的优势。利用纳米材料和电子媒介体的催化作用,结合rGO-Fc-NH2/AuNPs大的活性表面积和高的富集能力,成功构建了用于超灵敏检测双酚A(BPA)的协同信号放大平台。基于此新型传感器,BPA的氧化峰电流在0.005 - 10 μM范围内与BPA浓度呈线性关系,检测限为2 nM。在纳米材料上修饰电子媒介体可极大提高传感器的电化学性能,并将为制备新型基于电活性纳米材料的电化学生物传感器提供新的思路。