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微结构化超疏水表面:液滴压力对 fakir 态稳定性和表观接触角的影响。

Microstructured superhydrorepellent surfaces: effect of drop pressure on fakir-state stability and apparent contact angles.

机构信息

DIMeG Politecnico di Bari, viale Japigia 182, I-70126 Bari, Italy.

出版信息

J Phys Condens Matter. 2010 Aug 18;22(32):325107. doi: 10.1088/0953-8984/22/32/325107. Epub 2010 Jul 29.

Abstract

In this paper we present a generalized Cassie-Baxter equation to take into account the effect of drop pressure on the apparent contact angle θ(app). Also we determine the limiting pressure p(W) which causes the impalement transition to the Wenzel state and the pull-off pressure p(out) at which the drop detaches from the substrate. The calculations have been carried out for axial-symmetric pillars of three different shapes: conical, hemispherical-topped and flat-topped cylindrical pillars. Calculations show that, assuming the same pillar spacing, conical pillars may be more inclined to undergo an impalement transition to the Wenzel state, but, on the other hand, they are characterized by a vanishing pull-off pressure which causes the drop not to adhere to the substrate and therefore to detach very easily. We infer that this property should strongly reduce the contact angle hysteresis as experimentally observed in Martines et al (2005 Nano Lett. 5 2097-103). It is possible to combine large resistance to impalement transition (i.e. large value of p(W)) and small (or even vanishing) detaching pressure p(out) by employing cylindrical pillars with conical tips. We also show that, depending on the particular pillar geometry, the effect of drop pressure on the apparent contact angle θ(app) may be more or less significant. In particular we show that in the case of conical pillars increasing the drop pressure causes a significant decrease of θ(app) in agreement with some experimental investigations (Lafuma and Quéré 2003 Nat. Mater. 2 457), whereas θ(app) slightly increases for hemispherical or flat-topped cylindrical pillars.

摘要

在本文中,我们提出了一个广义的 Cassie-Baxter 方程,以考虑液滴压力对表观接触角θ(app)的影响。此外,我们还确定了导致刺穿转变为 Wenzel 状态的极限压力 p(W)和液滴从基底脱落的脱附压力 p(out)。计算针对三种不同形状的轴对称支柱进行:圆锥形、半球形顶部和平顶圆柱形支柱。计算表明,假设相同的支柱间距,圆锥形支柱可能更容易发生刺穿转变为 Wenzel 状态,但另一方面,它们的特征是脱附压力为零,这导致液滴不附着在基底上,因此很容易脱落。我们推断,这种特性应该会强烈降低接触角滞后,这与 Martines 等人(2005 年 Nano Lett. 5 2097-103)的实验观察结果一致。通过使用具有圆锥形尖端的圆柱形支柱,可以结合对刺穿转变的高抵抗力(即 p(W)值较大)和较小(甚至为零)的脱附压力 p(out)。我们还表明,根据特定的支柱几何形状,液滴压力对表观接触角θ(app)的影响可能更为显著或不显著。特别是,我们表明在圆锥形支柱的情况下,增加液滴压力会导致θ(app)显著下降,这与一些实验研究(Lafuma 和 Quéré 2003 Nat. Mater. 2 457)一致,而对于半球形或平顶圆柱形支柱,θ(app)则略有增加。

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