School of Mechanical Engineering, University of Shanghai for Science and Technology , Shanghai, 200093, China.
School of Mechanical Engineering, Harbin Institute of Technology , Harbin, 150001, China.
Langmuir. 2016 Nov 1;32(43):11123-11132. doi: 10.1021/acs.langmuir.6b00976. Epub 2016 Jun 13.
The contact angle (CA) of surface nanobubbles is believed to affect the stability of nanobubbles and fluid drag in micro/nanofluidic systems. The CA of nanobubbles is dependent on size and is believed to be affected by the surface charge-induced electrical double layer (EDL). However, neither of these of attributes are well understood. In this paper, by introducing an EDL-induced electrostatic wetting tension, a theoretical model is first established to study the effect of EDLs formed near the solid-liquid interface and the liquid-nanobubble interface on the gas phase CA of nanobubbles. The size-dependence of this EDL interaction is studied as well. Next, by using atomic force microscopy (AFM), the effect of the EDL on nanobubbles' gas phase CA is studied with variable electrical potential at the solid-liquid interface, which is adjusted by an applied voltage. Both the theoretical and the experimental results show that the EDLs formed near the solid-liquid interface and the liquid-nanobubble interface lead to a reduction of gas phase CA of the surface nanobubbles because of an electrostatic wetting tension on the nanobubble due to the attractive electrostatic interaction between the liquid and nanobubble within the EDL, which is in the nanobubbles' outward direction. An EDL with a larger zeta potential magnitude leads to a larger gas phase CA reduction. Furthermore, the effect of EDL on the nanobubbles' gas phase CA shows a significant size-dependence considering the size dependence of the electrostatic wetting tension. The gas phase CA reduction due to the EDL decreases with increasing nanobubble height and increases with the nanobubble's increasing curvature radius, indicating that a surface charge-induced EDL could possibly explain the size dependence of the gas phase CA of nanobubbles.
表面纳米气泡的接触角(CA)被认为会影响纳米气泡的稳定性和微纳流系统中的流体阻力。纳米气泡的 CA 取决于其尺寸,并被认为受到表面电荷诱导的双电层(EDL)的影响。然而,这两个属性都没有得到很好的理解。在本文中,通过引入 EDL 诱导的静电润湿张力,首先建立了一个理论模型来研究在固液界面和液-纳米气泡界面附近形成的 EDL 对纳米气泡气相 CA 的影响。还研究了这种 EDL 相互作用的尺寸依赖性。接下来,通过原子力显微镜(AFM),在固液界面上施加可变电压来调整施加电压,研究了 EDL 对纳米气泡气相 CA 的影响。理论和实验结果均表明,由于 EDL 内液体和纳米气泡之间的吸引力静电相互作用在纳米气泡上产生的静电润湿张力,导致靠近固液界面和液-纳米气泡界面形成的 EDL 导致表面纳米气泡的气相 CA 减小,这是纳米气泡的外向方向。具有较大 ζ 电位幅度的 EDL 会导致更大的气相 CA 减小。此外,考虑到静电润湿张力的尺寸依赖性,EDL 对纳米气泡气相 CA 的影响表现出显著的尺寸依赖性。由于 EDL 导致的气相 CA 减小随纳米气泡高度的增加而减小,随纳米气泡曲率半径的增加而增加,这表明表面电荷诱导的 EDL 可能可以解释纳米气泡气相 CA 的尺寸依赖性。