School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, 311 Ferst Drive NW, Atlanta, GA 30332-0100, United States.
School of Chemistry & Biochemistry, Georgia Institute of Technology, 901 Atlantic Drive, Atlanta, GA 30332-0400, United States.
J Colloid Interface Sci. 2015 Mar 15;442:133-9. doi: 10.1016/j.jcis.2014.11.065. Epub 2014 Dec 4.
Pollens possess a thin liquid coating, pollenkitt, which plays a major role in adhesion by forming capillary menisci at interfaces. Unfortunately, the influence of humidity on pollenkitt properties and capillary adhesion is unknown. Because humidity varies widely in the environment, the answers have important implications for better understanding plant reproduction, allergy and asthma, and pollen as atmospheric condensation nuclei. Here, pollenkitt-mediated adhesion of sunflower pollen to hydrophilic and hydrophobic surfaces was measured as a function of humidity. The results quantify for the first time the significant water absorption of pollenkitt and the resulting complex dependence of adhesion on humidity. On hydrophilic Si, adhesion increased with increasing RH for pollens with or without pollenkitt, up to 200nN at 70% RH. In contrast, on hydrophobic PS, adhesion of pollenkitt-free pollen is independent of RH. Surprisingly, when pollenkitt was present adhesion forces on hydrophobic PS first increased with RH up to a maximum value at 35% RH (∼160nN), and then decreased with further increases in RH. Independent measurement of pollenkitt properties is used with models of capillary adhesion to show that humidity-dependent changes in pollenkitt wetting and viscosity are responsible for this complex adhesion behavior.
花粉具有一层薄薄的液体涂层,即花粉糊,它在界面处形成毛细弯月面,从而在粘附中起主要作用。不幸的是,湿度对花粉糊特性和毛细粘附的影响尚不清楚。由于环境中湿度变化很大,这些答案对更好地理解植物繁殖、过敏和哮喘以及花粉作为大气凝结核具有重要意义。在这里,作为湿度的函数,测量了向日葵花粉与亲水和疏水表面之间的花粉糊介导的粘附。结果首次定量了花粉糊的显著吸水性以及粘附对湿度的复杂依赖性。在亲水 Si 上,有无花粉糊的花粉的粘附力均随 RH 的增加而增加,在 70% RH 时达到 200nN。相比之下,在疏水 PS 上,无花粉糊的花粉的粘附力与 RH 无关。令人惊讶的是,当花粉糊存在时,疏水 PS 上的粘附力最初随 RH 增加而增加,在 35% RH(约 160nN)时达到最大值,然后随 RH 的进一步增加而降低。使用毛细管粘附模型对花粉糊特性进行独立测量表明,花粉糊润湿性和粘度随湿度的变化是导致这种复杂粘附行为的原因。