Shakya Gazendra, Hoff Samuel E, Wang Shiyi, Heinz Hendrik, Ding Xiaoyun, Borden Mark A
Department of Mechanical Engineering, University of Colorado, 1111 Engineering Dr., Boulder, CO 80309, USA.
Department of Chemical and Biological Engineering, 596 UCB, Boulder, CO 80309, USA.
Sci Adv. 2020 Apr 3;6(14):eaaz7188. doi: 10.1126/sciadv.aaz7188. eCollection 2020 Apr.
Liquid emulsion droplet evaporation is of importance for various sensing and imaging applications. The liquid-to-gas phase transformation is typically triggered thermally or acoustically by low-boiling point liquids, or by inclusion of solid structures that pin the vapor/liquid contact line to facilitate heterogeneous nucleation. However, these approaches lack precise tunability in vaporization behavior. Here, we describe a previously unused approach to control vaporization behavior through an endoskeleton that can melt and blend into the liquid core to either enhance or disrupt cohesive intermolecular forces. This effect is demonstrated using perfluoropentane (CF) droplets encapsulating a fluorocarbon (FC) or hydrocarbon (HC) endoskeleton. FC skeletons inhibit vaporization, whereas HC skeletons trigger vaporization near the rotator melting transition. Our findings highlight the importance of skeletal interfacial mixing for initiating droplet vaporization. Tuning molecular interactions between the endoskeleton and droplet phase is generalizable for achieving emulsion or other secondary phase transitions, in emulsions.
液滴蒸发对于各种传感和成像应用至关重要。液-气相转变通常由低沸点液体通过热或声触发,或者通过包含固定气/液接触线以促进异相成核的固体结构来触发。然而,这些方法在汽化行为方面缺乏精确的可调性。在这里,我们描述了一种以前未使用过的方法,即通过一个可以熔化并融入液核以增强或破坏内聚分子间力的内骨架来控制汽化行为。使用包裹有碳氟化合物(FC)或碳氢化合物(HC)内骨架的全氟戊烷(CF)液滴证明了这种效果。FC骨架抑制汽化,而HC骨架在旋转体熔化转变附近触发汽化。我们的研究结果突出了骨架界面混合对于引发液滴汽化的重要性。调节内骨架与液滴相之间的分子相互作用对于实现乳液或乳液中的其他二级相变具有普遍适用性。