Cui Hong, Cui Shuaishuai, Tian Qiuju, Zhang Siyuan, Wang Mingxiu, Zhang Ping, Liu Yunfeng, Zhang Jialing, Li Xiangjun
School of Public Health, Shanxi Medical University, 56 Xinjian South Road, Taiyuan 030001, China.
School of Chemical Sciences, University of Chinese Academy of Sciences, 19A Yuquan Road, Beijing 100049, China.
ACS Omega. 2021 Nov 12;6(46):31184-31195. doi: 10.1021/acsomega.1c04765. eCollection 2021 Nov 23.
A nanocomposite was formed by combining graphene oxide (GO) with chromium-centered metal-organic framework (Cr-MOF) nanoparticles regulated by the dendrimer polyamidoamine (PAMAM). PAMAM can successfully regulate the synthesis of Cr-MOF; in doing so, the size of Cr-MOF is reduced, its original morphology is maintained, and it has good crystallinity. A simple ultrasonication method was used to make the Cr-MOF/GO hybrid nanocomposite. Various characterization methods confirmed the successful synthesis of PAMAM/Cr-MOF/GO nanocomposites. The PAMAM/Cr-MOF/ERGO modified electrode could be used with cyclic voltammetry (CV) and differential pulse voltammetry (DPV) to study the electrochemical behaviors of 1-hydroxypyrene (1-OHPyr). The results indicated that the constructed PAMAM/Cr-MOF/ERGO electrochemical sensor had a significantly enhanced electrocatalytic effect on the electrochemical reduction of 1-OHPyr compared with the sensors with no PAMAM and the ERGO sensor, which could be ascribed to the synergetic effect from the high porosity of Cr-MOF and the high conductivity of ERGO, as well as the further electron transport action of the nanocomposite. Under the optimal conditions, the reduction peak current and concentration of 1-OHPyr showed a good linear relationship in the range of 0.1-1.0 and 1.0-6.0 μM, and the detection limit of 1-OHPyr was calculated to be 0.075 μM. Moreover, the PAMAM/Cr-MOF/ERGO electrochemical sensor constructed in this paper can be expected to provide some instructions for the construction of electrochemical sensing platforms and wider potential applications.
通过将氧化石墨烯(GO)与由树枝状聚酰胺胺(PAMAM)调控的以铬为中心的金属有机框架(Cr-MOF)纳米颗粒相结合,形成了一种纳米复合材料。PAMAM能够成功调控Cr-MOF的合成;在此过程中,Cr-MOF的尺寸减小,其原始形态得以保持,且具有良好的结晶度。采用简单的超声处理方法制备了Cr-MOF/GO杂化纳米复合材料。各种表征方法证实了PAMAM/Cr-MOF/GO纳米复合材料的成功合成。PAMAM/Cr-MOF/ERGO修饰电极可用于循环伏安法(CV)和差分脉冲伏安法(DPV)来研究1-羟基芘(1-OHPyr)的电化学行为。结果表明,与不含PAMAM的传感器和ERGO传感器相比,构建的PAMAM/Cr-MOF/ERGO电化学传感器对1-OHPyr的电化学还原具有显著增强的电催化作用,这可归因于Cr-MOF的高孔隙率和ERGO的高导电性产生的协同效应,以及纳米复合材料进一步的电子传输作用。在最佳条件下,1-OHPyr的还原峰电流与浓度在0.1 - 1.0和1.0 - 6.0 μM范围内呈现良好的线性关系,计算得出1-OHPyr的检测限为0.075 μM。此外,本文构建的PAMAM/Cr-MOF/ERGO电化学传感器有望为电化学传感平台的构建提供一些指导,并具有更广泛的潜在应用。