Applications of Liquid Metals
Aaron T. Ohta, Michael D. Bartlett, Michael D. Dickey, Kourosh Kalantar‐Zadeh
- 发表年份
- 2024
- 引用次数
- 9
- 访问权限
- 开放获取
摘要
Low-melting-point metals, especially those that are liquid at room temperature, are being explored for an increasing number of applications. Like solid-phase metals, liquid metals have high electrical and thermal conductivity. However, liquid metals are also conformal, flexible, and stretchable, even when using thick films and large volumes. The shapes and structures that can be achieved with liquid metals span a variety of geometries and scales, ranging from thin films to 3D structures, and from nanoscale to macroscale feature sizes. Furthermore, liquid metals based on alloys of gallium have been shown to have low toxicity, making them suitable for biomedical devices and wearable electronics. These unique properties of low-melting-point metals make them useful materials in a variety of applications such as soft electronics, catalysis, and microfluidics. This Special Section is a collection of ten research articles and one review article, contributed by experts in applications that utilize low-melting-point metals. The articles can be broadly sorted into three themes: 1) liquid metals for stretchable electronics, 2) liquid metals for energy storage devices and recyclable devices, and 3) fabrication processes enabled by or tailored to the use of low-melting-point metals. The topics covered by this special section illustrate the wide applicability of low-melting-point metals, and the utility of this class of materials in important and trending research areas. Liquid metals are inherently suitable for stretchable electronics, as they can be used to realize deformable electrically conductive materials. In addition, repeated cycles of stretching and bending can result in fatigue of solid materials, but liquid–metal components are unaffected. Furthermore, the low toxicity of gallium-based liquid metals makes them suitable for wearable electronics. In this special section, Liu and co-workers demonstrate a wearable sensor that uses a spiral structure of liquid metal to measure a variety of human motion (article number 2300896). Du and co-workers have reviewed the broader field of stretchable and flexible sensors that employ liquid metals (article number 2300431). Lim and co-workers describe a method of fabricating electrodes that use liquid metal in a sponge-like structure, and demonstrate stretchable sensors and flexible electronic breadboards using these “sponge electrodes” (article number 2301589). Malakooti and co-workers have also created stretchable conductors but with a different approach: printing elastomers impregnated with liquid–metal microdroplets (article number 2301324). Under strain, the microdroplets become electrically connected, and remain conductive after the strain is released. Bae and co-workers also used the direct printing of conductive material, but in their work liquid metal was used as an ink to create a stretchable thermoelectric device (article number 2301171). As seen in these papers, not all of the components of stretchable electronics need to be deformable. Jang and co-workers created a stretchable display that consists of an array of light-emitting-diode pixels with liquid–metal interconnects (article number 2301413). It is beneficial to have flexible and stretchable energy sources for stretchable electronics. Low-melting-point metals are also useful in this area of research. As in other stretchable devices, liquid metals can be used for electrodes in energy storage devices. Toward this end, Tavakoli and co-workers show that graphene oxide coatings on eutectic gallium–indium liquid metal films make them more stable in acidic or alkaline solutions (article number 2301428). The coating thus makes electrodes made from these liquid metals more robust, with a higher capacitance per unit area. This is useful for energy storage in devices such as supercapacitors. In a separate article, Tavakoli and co-workers demonstrate a different type of energy storage for stretchable electronics: a strain-tolerant recharge
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