Arul P, Gowthaman N S K, John S Abraham, Lim Hong Ngee
Centre for Nanoscience and Nanotechnology, Department of Chemistry The Gandhigram Rural Institute, Gandhigram, Dindigul, 624 302 Tamil Nadu, India.
Materials Synthesis and Characterization Laboratory, Institute of Advanced Technology, Universiti Putra Malaysia, UPM Serdang, 43400 Selangor, Malaysia.
ACS Omega. 2020 Jun 10;5(24):14242-14253. doi: 10.1021/acsomega.9b03829. eCollection 2020 Jun 23.
Excess levels of nitrite ion in drinking water interact with amine functionalized compounds to form carcinogenic nitrosamines, which cause stomach cancer. Thus, it is indispensable to develop a simple protocol to detect nitrite. In this paper, a Cu-metal-organic framework (Cu-MOF) with graphene oxide (GO) composite was synthesized by ultrasonication followed by solvothermal method and then fabricated on a glassy carbon (GC) electrode for the sensitive and selective determination of nitrite contamination. The SEM image of the synthesized Cu-MOF showed colloidosome-like structure with an average size of 8 μm. Interestingly, the Cu-MOF-GO composite synthesized by ultrasonic irradiation followed by solvothermal process produce controlled size of 3 μm colloidosome-like structure. This was attributed to the formation of an exfoliated sheet-like structure of GO by ultrasonication in addition to the obvious influence of GO providing the oxygen functional groups as a nucleation node for size-controlled growth. On the other hand, the composite prepared without ultrasonication exhibited 6.6 μm size agglomerated colloidosome-like structures, indicating the crucial role of ultrasonication for the formation of size-controlled composites. XPS results confirmed the presence of Cu(II) in the as-synthesized Cu-MOF-GO based on the binding energies at 935.5 eV for Cu 2p and 955.4 eV for Cu 2p. The electrochemical impedance studies in [Fe(CN)] redox couple at the composite fabricated electrode exhibited more facile electron transfer than that with Cu-MOF and GO modified electrodes, which helped to utilize Cu-MOF-GO for trace level determination of nitrite in environmental effluent samples. The Cu-MOF-GO fabricated electrode offered a superior sensitive platform for nitrite determination than the Cu-MOF and GO modified electrodes demonstrating oxidation at less positive potential with enhanced oxidation current. The present sensor detects nitrite in the concentration range of 1 × 10 to 1 × 10 M with the lowest limit of detection (LOD) of 1.47 nM (S/N = 3). Finally, the present Cu-MOF-GO electrode was successfully exploited for nitrite ion determination in lake and dye contaminated water samples.
饮用水中过量的亚硝酸根离子与胺官能化化合物相互作用形成致癌性亚硝胺,从而导致胃癌。因此,开发一种简单的亚硝酸盐检测方法是必不可少的。在本文中,通过超声处理后采用溶剂热法合成了具有氧化石墨烯(GO)复合材料的铜基金属有机框架(Cu-MOF),然后将其制备在玻碳(GC)电极上,用于灵敏且选择性地测定亚硝酸盐污染。合成的Cu-MOF的扫描电子显微镜图像显示出平均尺寸为8μm的胶体体状结构。有趣的是,通过超声辐照后采用溶剂热法合成的Cu-MOF-GO复合材料产生了尺寸可控的3μm胶体体状结构。这归因于超声处理使GO形成了剥离的片状结构,此外,GO提供的氧官能团作为尺寸控制生长的成核节点也有明显影响。另一方面,未经过超声处理制备的复合材料呈现出尺寸为6.6μm的团聚胶体体状结构,这表明超声处理对于形成尺寸可控的复合材料起着关键作用。X射线光电子能谱结果基于Cu 2p的935.5 eV和Cu 2p的955.4 eV的结合能证实了合成的Cu-MOF-GO中存在Cu(II)。在复合制备电极上对[Fe(CN)]氧化还原对进行的电化学阻抗研究表明,与Cu-MOF和GO修饰电极相比,其电子转移更易进行,这有助于利用Cu-MOF-GO对环境废水样品中的亚硝酸盐进行痕量测定。与Cu-MOF和GO修饰电极相比,制备的Cu-MOF-GO电极提供了一个用于亚硝酸盐测定的更灵敏的平台,在更正的电位下表现出氧化且氧化电流增强。本传感器检测亚硝酸盐的浓度范围为1×10至1×10 M,最低检测限(LOD)为1.47 nM(S/N = 3)。最后,本Cu-MOF-GO电极成功用于湖泊水和染料污染水样品中亚硝酸根离子的测定。