论文标题

来自过度互动的界面组件的弹道弹射击

Ballistic Ejection of Microdroplets from Overpacked Interfacial Assemblies

论文作者

Wu, Xuefei, Bordia, Gautam, Streubel, Robert, Hasnain, Jaffar, Pedroso, Cássio C. S., Cohen, Bruce E., Rad, Behzad, Ashby, Paul, Omar, Ahmad K., Geissler, Phillip L., Wang, Dong, Xue, Han, Wang, Jianjun, Russell, Thomas P.

论文摘要

自发性乳化是由液态液体界面上表面活性剂组装和积累产生的,是一种界面不稳定性,在其中产生微粒,并从界面扩散地扩散直至完全乳化。在这里,我们表明,外部磁场可以调节液态液接口处的顺磁性纳米颗粒表面活性剂(NPSS)的组装,并触发界面处NPSS面积密度的过度饱和,这证明了互体构成型的互化量的较大次要张力,以及具有巨大稳定性的型理论,这证明了界面上的NPSS密度。尽管γ显着降低,但磁场的存在不会导致稳定的界面变得不稳定。然而,在快速去除田地后,发生了从表面上爆炸的微滴体的爆炸性弹出,这是一种动态的界面不稳定性,称为爆炸性乳化。这个爆炸性事件迅速将NPS的面积密度降低到其前场水平,从而稳定界面。外部抑制或触发爆炸性的乳化和控制的能力,成千上万的微螺柱的爆炸性乳化和受控产生,发现了有效的能源储能和释放过程,该过程具有潜在的应用和远程控制的化学物质和远程控制的软性微机器人的应用,利用了微磁性的效力激素性质。

Spontaneous emulsification, resulting from the assembly and accumulation of surfactants at liquid-liquid interfaces, is an interfacial instability where microdroplets are generated and diffusively spread from the interface until complete emulsification. Here, we show that an external magnetic field can modulate the assembly of paramagnetic nanoparticle surfactants (NPSs) at liquid-liquid interfaces and trigger an oversaturation in the areal density of the NPSs at the interface, as evidenced by a marked reduction in the interfacial tension, γ, and corroborated with a magnetostatic continuum theory. Despite the significant reduction in γ, the presence of the magnetic field does not cause stable interfaces to become unstable. Upon rapid removal of the field, however, an explosive ejection of a plume of microdroplets from the surface occurs, a dynamical interfacial instability which is termed explosive emulsification. This explosive event rapidly reduces the areal density of the NPSs to its pre-field level, stabilizing the interface. The ability to externally suppress or trigger the explosive emulsification and controlled generation of tens of thousands of microdroplets, uncovers an efficient energy storage and release process, that has potential applications for controlled and directed delivery of chemicals and remotely controlled soft microrobots, taking advantage of the ferromagnetic nature of the microdroplets.

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