Su Yao-Yao, Pan Da-Wei, Zhang Tao-Xian, Xie Rui, Ju Xiao-Jie, Liu Zhuang, Deng Nan-Nan, Wang Wei, Chu Liang-Yin
School of Chemical Engineering, Sichuan University, Chengdu 610065, Sichuan, China.
School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
Sci Adv. 2025 Mar 21;11(12):eads1065. doi: 10.1126/sciadv.ads1065. Epub 2025 Mar 19.
High-throughput production of monodisperse microdroplets has revolutionized many fields, typically relying on shear-induced emulsification in intricate microfluidic channels to induce the Rayleigh-Plateau instability. This mechanism exhibits low robustness due to its high dependence on the physical properties and flow conditions of fluids. Here, we report a robust emulsification mechanism-wetting-induced interfacial instability-for droplet emission. We find that, when pendant microdroplets in the air contact with an immiscible wetting bulk phase, it triggers interfacial instability in the hanging droplets and then their rapid breakup into the bulk phase. This simplifies the monodisperse microdroplet production using a nozzle positioned above an air-liquid interface, requiring no complex microchannels. We demonstrate that this method exhibits highly scalable production and exceptional robustness against variations in physical properties and flow conditions of fluids, including highly viscous non-Newtonian fluid (56,600 millipascal-seconds). This mechanism provides a simpler alternative to the traditional Rayleigh-Plateau instability for emulsification, offering opportunities for industrial applications and insights into microscale interfacial science.
单分散微滴的高通量生产彻底改变了许多领域,通常依靠在复杂的微流体通道中进行剪切诱导乳化来引发瑞利-普拉托不稳定性。由于这种机制高度依赖于流体的物理性质和流动条件,其稳健性较低。在此,我们报告一种稳健的乳化机制——润湿诱导界面不稳定性——用于液滴发射。我们发现,当空气中的悬垂微滴与不混溶的润湿本体相接触时,会引发悬垂液滴中的界面不稳定性,然后它们迅速破碎成本体相。这简化了使用位于气液界面上方的喷嘴进行单分散微滴的生产,无需复杂的微通道。我们证明,这种方法具有高度可扩展的生产能力,并且对流体的物理性质和流动条件的变化具有出色的稳健性,包括高粘性非牛顿流体(56,600 毫帕秒)。这种机制为传统的瑞利-普拉托不稳定性乳化提供了一种更简单的替代方案,为工业应用提供了机会,并为微观界面科学提供了见解。