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Self-assembly of layered double hydroxide nanosheets/Au nanoparticles ultrathin films for enzyme-free electrocatalysis of glucose

机译:层状双氢氧化物纳米片/金纳米粒子超薄膜的自组装,用于葡萄糖的无酶电催化

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This paper reports the fabrication of layered double hydroxide nanosheets (LDH nanosheets)/Au nanoparticles (AuNPs) ultrathin films (UTFs) via the layer-by-layer (LBL) assembly technique, and their electrocatalytic performance for the oxidation of glucose was demonstrated. UV-vis absorption spectra show the uniform growth of the UTFs and the enhancement of interlayer plasmon coupling of AuNPs upon increasing deposition cycle. The XRD results indicate that the (LDH/AuNPs)_n UTFs possess long-range order stacking in the normal direction of the substrate, with AuNPs accommodated between the LDH nanosheets as a monolayer arrangement. SEM, TEM and AFM images reveal a high dispersion of AuNPs on the surface of the LDH nanosheets without aggregation. The electrochemical behavior of the UTF modified fluorine-doped tin oxide (FTO) electrode was studied by cyclic voltammetry and electrochemical impedance spectroscopy. The (LDH/AuNPs)_n UTF shows improved electron transfer kinetics, owing to the formation of electron tunneling junctions resulting from the interlayer plasmon coupling. This leads to new channels for facilitating electron transfer within the UTFs. In addition, the (LDH/AuNPs)_8 electrode displays significant electrocatalytic performance for glucose with a linear response range (50 μM-20 mM), low detection limit (10.8 μM), high sensitivity (343 μA mM~(-1) cm~(-2)), good stability and reproducibility. Therefore, this work provides a feasible method to immobilize metal nanoparticles using the LDH nanosheet as a 2D matrix, which is promising for the development of enzyme-free sensors.
机译:本文报道了通过层层(LBL)组装技术制备层状双氢氧化物纳米片(LDH纳米片)/金纳米颗粒(AuNPs)超薄膜(UTF),并证明了其对葡萄糖氧化的电催化性能。紫外可见吸收光谱显示,随着沉积周期的增加,UTF的均匀生长和AuNPs的层间等离子体激元耦合增强。 XRD结果表明,(LDH / AuNPs)_n UTFs在基板的法线方向上具有长距离有序堆积,而AuNPs以单层排列形式容纳在LDH纳米片之间。 SEM,TEM和AFM图像显示LNP纳米片表面上AuNP的高度分散而没有聚集。通过循环伏安法和电化学阻抗谱研究了UTF修饰的氟掺杂氧化锡(FTO)电极的电化学行为。 (LDH / AuNPs)_n UTF显示出改善的电子传输动力学,这是由于层间等离子体激元耦合导致电子隧穿结的形成。这导致了促进UTF内部电子转移的新渠道。此外,(LDH / AuNPs)_8电极对葡萄糖具有显着的电催化性能,具有线性响应范围(50μM-20mM),低检测限(10.8μM),高灵敏度(343μAmM〜(-1)cm 〜(-2)),良好的稳定性和可重复性。因此,这项工作为使用LDH纳米片作为2D基质固定金属纳米颗粒提供了一种可行的方法,这对无酶传感器的开发很有希望。

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