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Liquid droplet movement on horizontal surface with gradient surface energy

机译:具有梯度表面能的液滴在水平表面上的运动

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A surface with gradient surface energy was fabricated on a silicon wafer by using the chemical vapor deposition (CVD) technology with the dodecyltrichlorosilane (C_(12)H_(25)CI_3Si) vapor which was adsorbed chemically on the surface of the silicon wafer to form a self-assemble monolayer (ASM) and thus a gradient profile of wettability. The microscopic contours of the gradient surface were measured with Seiko SPA400 atom force microscope (AFM). And the surface wettability profile was characterized by the sessile drop method, measuring the contact angle of fine water droplets that lay on the gradient surface, to represent the distribution of the surface energy on the surface. Using a high-speed video imaging system, the motion of water droplet on the horizontal gradient surface was visualized and the transient velocity was measured under ambient condition. The experimental results show that the liquid droplets can be driven to move from hydro-phobic side to hydrophilic side on the horizontal gradient surface and the velocity of droplet can reach up to 40 mm/s. In addition, the motion of the water droplet can be generally divided into two stages: an acceleration stage and a deceleration stage. The droplet presents a squirming movement on the surface with a lower peak velocity and a larger extent of deceleration motion. And the static advancing contact angle of the droplet is obviously larger than the dynamic advancing contact angle on the gradient energy surface.
机译:通过使用化学气相沉积(CVD)技术将十二烷基三氯硅烷(C_(12)H_(25)CI_3Si)蒸气化学吸附在硅晶片的表面上,以形成具有梯度表面能的表面自组装单分子膜(ASM),因此具有润湿性的梯度分布。用精工SPA400原子力显微镜(AFM)测量梯度表面的微观轮廓。并通过无滴法表征了表面的润湿性,测量了位于梯度表面的细小水滴的接触角,以表示表面能在表面的分布。使用高速视频成像系统,可以看到水滴在水平梯度表面上的运动,并在环境条件下测量瞬态速度。实验结果表明,在水平梯度表面上,液滴可以被驱动从疏水侧向亲水侧移动,液滴的速度可以达到40mm / s。另外,水滴的运动通常可以分为两个阶段:加速阶段和减速阶段。液滴以较低的峰值速度和较大的减速运动呈现出在表面上的弯曲运动。并且液滴的静态前进接触角明显大于梯度能量表面上的动态前进接触角。

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