Institute of Biochemical and Biomedical Engineering, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, No.1, Section 3, Chung-Hsiao East Road, Taipei 10608, Taiwan.
Int J Mol Sci. 2020 Apr 19;21(8):2853. doi: 10.3390/ijms21082853.
Designing and engineering nanocomposites with tailored physiochemical properties through teaming distinct components is a straightforward strategy to yield multifunctional materials. Here, we describe a rapid, economical, and green one-pot microwave synthetic procedure for the preparation of ternary nanocomposites carbon/polydopamine/Au nanoparticles (C/PDA/AuNPs; C = carbon nanotubes (CNTs), reduced graphene oxide (rGO)). No harsh reaction conditions were used in the method, as are used in conventional hydrothermal or high-temperature methods. The PDA unit acts as a non-covalent functionalizing agent for carbon, through π stacking interactions, and also as a stabilizing agent for the formation of AuNPs. The CNTs/PDA/AuNPs modified electrode exhibited excellent electrocatalytic activity to oxidize chloramphenicol and the resulting sensor exhibited a low detection limit (36 nM), wide linear range (0.1-534 μM), good selectivity (against 5-fold excess levels of interferences), appreciable reproducibility (3.47%), good stability (94.7%), and practicality (recoveries 95.0%-98.4%). Likewise, rGO/PDA/AuNPs was used to fabricate a sensitive folic acid sensor, which exhibits excellent analytical parameters, including wide linear range (0.1-905 μM) and low detection limit (25 nM). The described synthetic route includes fast reaction time (5 min) and a readily available household microwave heating device, which has the potential to significantly contribute to the current state of the field.
通过将不同的组分组合在一起设计和工程具有定制物理化学性质的纳米复合材料是一种产生多功能材料的简单策略。在这里,我们描述了一种快速、经济、绿色的一锅微波合成方法,用于制备三元纳米复合材料碳/聚多巴胺/金纳米粒子(C/PDA/AuNPs;C=碳纳米管(CNTs)、还原氧化石墨烯(rGO))。该方法不使用苛刻的反应条件,如常规水热法或高温法所使用的条件。PDA 单元通过π堆积相互作用作为碳的非共价功能化剂,并且还作为 AuNPs 形成的稳定剂。修饰后的 CNTs/PDA/AuNPs 电极对氯霉素的氧化表现出优异的电催化活性,所得传感器表现出低检测限(36 nM)、宽线性范围(0.1-534 μM)、良好的选择性(对 5 倍过量的干扰物)、可察觉的重现性(3.47%)、良好的稳定性(94.7%)和实用性(回收率 95.0%-98.4%)。同样,rGO/PDA/AuNPs 被用于制造灵敏的叶酸传感器,其表现出优异的分析参数,包括宽线性范围(0.1-905 μM)和低检测限(25 nM)。所描述的合成路线包括快速反应时间(5 分钟)和易于获得的家用微波加热设备,这有可能对当前的研究领域做出重大贡献。