Motion behaviors of droplets containing Au nanoparticles on a superhydrophobic laser-induced graphene surface

Yunrui Han, Guangpeng Fan, Yingkuan Han, Yu Zhang, Ning Huang, Mingda Wen, Lin Han
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Abstract

The movement of nanoparticle-containing droplets on solid surfaces significantly affects the distribution of the nanoparticles and is of great interest in the fields of two-phase separation, biosensing detection, inkjet printing, and microarrays. There has been little research on the initiation and motion behaviors of colloidal droplets containing nanoparticles on superhydrophobic surfaces. Here, we prepare superhydrophobic laser-induced graphene (LIG) surfaces with excellent depinning effects using an extremely simple method and explore the formation mechanism of the depinning-LIG surfaces. The reduction of nano-graphene fibers and the increased hydroxyl group ratio after alcohol modification further enhance the hydrophobic properties of depinning-LIG, reducing its surface adhesion. The initial and continuous motion of droplets containing Au nanoparticles (AuNPs) on these superhydrophobic surfaces under airflow is studied using high-speed microscopy. The coupling effects of the droplet size, surface properties, airflow velocity, and nanoparticles on the droplet motion behaviors are analyzed. The dimensionless parameter G is incorporated to obtain the partition diagram of AuNP droplet motion behaviors on depinning-LIG surfaces, which delineate the critical conditions for droplet “oscillation,” “initiate sliding,” and “continuous rolling” as a function of system parameters. For AuNP droplets, the viscous force Fγ,p exerted by the nanoparticles on the contact line significantly affects the droplet movement behaviors. In addition, a mathematical model about the competition of dynamic forces and resistance is established to describe the motion of AuNP droplets, and the critical conditions for different motion behaviors of the droplet are clarified to guide practical applications.
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含有金纳米颗粒的液滴在超疏水激光诱导石墨烯表面上的运动行为
含有纳米粒子的液滴在固体表面上的运动会极大地影响纳米粒子的分布,这在两相分离、生物传感检测、喷墨打印和微阵列等领域引起了极大的兴趣。目前,有关含有纳米粒子的胶体液滴在超疏水表面上的引发和运动行为的研究还很少。在此,我们采用一种极其简单的方法制备了具有优异去胶效果的超疏水性激光诱导石墨烯(LIG)表面,并探索了去胶-LIG 表面的形成机理。醇改性后纳米石墨烯纤维的减少和羟基比例的增加进一步增强了疏水性能,降低了其表面附着力。利用高速显微镜研究了含有金纳米粒子(AuNPs)的液滴在气流作用下在这些超疏水表面上的初始运动和连续运动。分析了液滴大小、表面特性、气流速度和纳米颗粒对液滴运动行为的耦合效应。通过加入无量纲参数 G,得到了 AuNP 液滴在去宁-LIG 表面上运动行为的分区图,从而划分出液滴 "摆动"、"开始滑动 "和 "连续滚动 "的临界条件,并将其作为系统参数的函数。对于 AuNP 液滴,纳米粒子在接触线上施加的粘性力 Fγ,p 对液滴的运动行为有显著影响。此外,还建立了描述 AuNP 液滴运动的动力和阻力竞争数学模型,并阐明了液滴不同运动行为的临界条件,为实际应用提供了指导。
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