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Manipulation of gold colloidal nanoparticles with atomic force microscopy in dynamic mode: influence of particle–substrate chemistry and morphology, and of operating conditions

机译:原子力显微镜在动态模式下处理金胶体纳米颗粒:颗粒-基质化学和形态以及操作条件的影响

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摘要

One key component in the assembly of nanoparticles is their precise positioning to enable the creation of new complex nano-objects. Controlling the nanoscale interactions is crucial for the prediction and understanding of the behaviour of nanoparticles (NPs) during their assembly. In the present work, we have manipulated bare and functionalized gold nanoparticles on flat and patterned silicon and silicon coated substrates with dynamic atomic force microscopy (AFM). Under ambient conditions, the particles adhere to silicon until a critical drive amplitude is reached by oscillations of the probing tip. Beyond that threshold, the particles start to follow different directions, depending on their geometry, size and adhesion to the substrate. Higher and respectively, lower mobility was observed when the gold particles were coated with methyl (–CH3) and hydroxyl (–OH) terminated thiol groups. This major result suggests that the adhesion of the particles to the substrate is strongly reduced by the presence of hydrophobic interfaces. The influence of critical parameters on the manipulation was investigated and discussed viz. the shape, size and grafting of the NPs, as well as the surface chemistry and the patterning of the substrate, and finally the operating conditions (temperature, humidity and scan velocity). Whereas the operating conditions and substrate structure are shown to have a strong effect on the mobility of the particles, we did not find any differences when manipulating ordered vs random distributed particles.
机译:纳米粒子组装中的一个关键组成部分是其精确定位,可以创建新的复杂纳米物体。控制纳米尺度的相互作用对于预测和理解纳米粒子(NP)在其组装过程中的行为至关重要。在当前的工作中,我们已经使用动态原子力显微镜(AFM)在平面和有图案的硅以及硅涂层的基板上处理了裸露的和功能化的金纳米粒子。在环境条件下,颗粒会粘附在硅上,直到探测头的振动达到临界驱动振幅为止。超过该阈值,粒子开始遵循不同的方向,这取决于它们的几何形状,大小和对基材的附着力。当金颗粒被甲基(-CH3)和羟基(-OH)封端的硫醇基团包覆时,观察到较高和较低的迁移率。该主要结果表明,由于疏水性界面的存在,大大降低了颗粒对基材的粘附力。研究并讨论了关键参数对操纵的影响。 NP的形状,大小和接枝,以及表面化学性质和底物的图案,最后是操作条件(温度,湿度和扫描速度)。尽管操作条件和底物结构显示出对颗粒迁移率的强烈影响,但是当操作有序和随机分布的颗粒时,我们没有发现任何差异。

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