Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania15213, United States.
Department of Chemical Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania15213, United States.
ACS Appl Mater Interfaces. 2022 Dec 14;14(49):55028-55038. doi: 10.1021/acsami.2c14815. Epub 2022 Dec 2.
Liquid metal embedded elastomers (LMEEs) are composed of a soft polymer matrix embedded with droplets of metal alloys that are liquid at room temperature. These soft matter composites exhibit exceptional combinations of elastic, electrical, and thermal properties that make them uniquely suited for applications in flexible electronics, soft robotics, and thermal management. However, the fabrication of LMEE structures has primarily relied on rudimentary techniques that limit patterning to simple planar geometries. Here, we introduce an approach for direct ink write (DIW) printing of a printable LMEE ink to create three-dimensional shapes with various designs. We use eutectic gallium-indium (EGaIn) as the liquid metal, which reacts with oxygen to form an electrically insulating oxide skin that acts as a surfactant and stabilizes the droplets for 3D printing. To rupture the oxide skin and achieve electrical conductivity, we encase the LMEE in a viscoelastic polymer and apply acoustic shock. For printed composites with a 80% LM volume fraction, this activation method allows for a volumetric electrical conductivity of 5 × 10 S cm (80% LM volume)─significantly higher than what had been previously reported with mechanically sintered EGaIn-silicone composites. Moreover, we demonstrate the ability to print 3D LMEE interfaces that provide enhanced charge transfer for a triboelectric nanogenerator (TENG) and improved thermal conductivity within a thermoelectric device (TED). The 3D printed LMEE can be integrated with a highly soft TED that is wearable and capable of providing cooling/heating to the skin through electrical stimulation.
液态金属嵌入弹性体 (LMEE) 由软聚合物基质组成,其中嵌入了在室温下呈液态的金属合金液滴。这些软物质复合材料表现出优异的弹性、电学和热学性能组合,使其非常适合用于柔性电子、软机器人和热管理应用。然而,LMEE 结构的制造主要依赖于基本技术,这些技术将图案限制在简单的平面几何形状上。在这里,我们介绍了一种直接墨水书写 (DIW) 打印可打印 LMEE 墨水的方法,以创建具有各种设计的三维形状。我们使用共晶镓-铟 (EGaIn) 作为液态金属,它与氧气反应形成电绝缘氧化皮,充当表面活性剂并稳定液滴进行 3D 打印。为了破坏氧化皮并实现导电性,我们将 LMEE 封装在粘弹性聚合物中并施加声冲击。对于液态金属体积分数为 80%的打印复合材料,这种激活方法允许体积电导率达到 5×10 S cm(80%液态金属体积),明显高于以前报道的机械烧结 EGaIn-硅酮复合材料的电导率。此外,我们展示了打印 3D LMEE 界面的能力,该界面可提高摩擦纳米发电机 (TENG) 的电荷转移能力,并提高热电设备 (TED) 内的热导率。3D 打印的 LMEE 可以与高度柔软的 TED 集成,该 TED 可穿戴,并通过电刺激为皮肤提供冷却/加热。