Ballistic Ejection of Microdroplets from Overpacked Interfacial Assemblies

Author:

Wu Xuefei12ORCID,Bordia Gautam23,Streubel Robert4ORCID,Hasnain Jaffar25,Pedroso Cássio C.S.6,Cohen Bruce E.67,Rad Behzad6,Ashby Paul6,Omar Ahmad K.23,Geissler Phillip L.5,Wang Dong1,Xue Han8,Wang Jianjun8,Russell Thomas P.12910ORCID

Affiliation:

1. Beijing Advanced Innovation Center for Soft Matter Science and Engineering & State Key Laboratory of Organic‐Inorganic Composites Beijing University of Chemical Technology Beijing 100029 China

2. Materials Sciences Division Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

3. Department of Materials Science and Engineering University of California Berkeley CA 94720 USA

4. Department of Physics and Astronomy University of Nebraska‐Lincoln Lincoln NE 68588 USA

5. Department of Chemistry University of California Berkeley CA 94720 USA

6. Molecular Foundry Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

7. Division of Molecular Biophysics & Integrated Bioimaging Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

8. Beijing National Laboratory for Molecular Science Institute of Chemistry Chinese Academy of Sciences Beijing 100190 China

9. Polymer Science and Engineering Department University of Massachusetts Amherst MA 01003 USA

10. Advanced Institute for Materials Research (AIMR) Tohoku University 2‐1‐1 Katahira, Aoba Sendai 980–8577 Japan

Abstract

AbstractSpontaneous 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, it is shown that an external magnetic field can modulate the assembly of paramagnetic nanoparticle surfactants (NPSs) at liquid–liquid interfaces to 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.

Funder

U.S. Department of Energy

National Science Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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