Interface of gallium-based liquid metals: oxide skin, wetting, and applications

IF 8 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Nanoscale Horizons Pub Date : 2024-05-01 DOI:10.1039/D4NH00067F
Ji-Hye Kim, Sooyoung Kim, Michael D. Dickey, Ju-Hee So and Hyung-Jun Koo
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Abstract

Gallium-based liquid metals (GaLMs) are promising for a variety of applications-especially as a component material for soft devices-due to their fluidic nature, low toxicity and reactivity, and high electrical and thermal conductivity comparable to solid counterparts. Understanding the interfacial properties and behaviors of GaLMs in different environments is crucial for most applications. When exposed to air or water, GaLMs form a gallium oxide layer with nanoscale thickness. This “oxide nano-skin” passivates the metal surface and allows for the formation of stable microstructures and films despite the high-surface tension of liquid metal. The oxide skin easily adheres to most smooth surfaces. While it enables effective printing and patterning of the GaLMs, it can also make the metals challenging to handle because it adheres to most surfaces. The oxide also affects the interfacial electrical resistance of the metals. Its formation, thickness, and composition can be chemically or electrochemically controlled, altering the physical, chemical, and electrical properties of the metal interface. Without the oxide, GaLMs wet metallic surfaces but do not wet non-metallic substrates such as polymers. The topography of the underlying surface further influences the wetting characteristics of the metals. This review outlines the interfacial attributes of GaLMs in air, water, and other environments and discusses relevant applications based on interfacial engineering. The effect of surface topography on the wetting behaviors of the GaLMs is also discussed. Finally, we suggest important research topics for a better understanding of the GaLMs interface.

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镓基液态金属的界面:氧化皮、润湿和应用
镓基液态金属(GaLMs)具有流动性、低毒性和低反应性,以及与固态金属相媲美的高导电性和导热性,因此在各种应用领域都大有可为,尤其是作为软器件的组件材料。了解 GaLMs 在不同环境中的界面特性和行为对大多数应用都至关重要。当接触空气或水时,GaLMs 会形成纳米级厚度的氧化镓层。这种 "纳米氧化皮 "能使金属表面钝化,并在液态金属的高表面张力下形成稳定的微结构和薄膜。氧化皮很容易附着在大多数光滑的表面上。虽然它能使 GaLMs 的打印和图案化变得有效,但也会使金属的处理变得困难。氧化皮还会影响金属的界面电阻。氧化物的形成、厚度和成分可通过化学或电化学方法加以控制,从而改变金属界面的物理、化学和电气特性。如果没有氧化物,GaLMs 可润湿金属表面,但不能润湿聚合物等非金属基底。底层表面的形貌会进一步影响金属的润湿特性。本综述概述了 GaLMs 在空气、水和其他环境中的界面属性,并讨论了基于界面工程的相关应用。此外,还讨论了表面形貌对 GaLMs 润湿行为的影响。最后,我们为更好地理解 GaLMs 界面提出了重要的研究课题。
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来源期刊
Nanoscale Horizons
Nanoscale Horizons Materials Science-General Materials Science
CiteScore
16.30
自引率
1.00%
发文量
141
期刊介绍: Nanoscale Horizons stands out as a premier journal for publishing exceptionally high-quality and innovative nanoscience and nanotechnology. The emphasis lies on original research that introduces a new concept or a novel perspective (a conceptual advance), prioritizing this over reporting technological improvements. Nevertheless, outstanding articles showcasing truly groundbreaking developments, including record-breaking performance, may also find a place in the journal. Published work must be of substantial general interest to our broad and diverse readership across the nanoscience and nanotechnology community.
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