Fu Jun-Heng, Zhang Xu-Dong, Qin Peng, Liu Jing
Key Laboratory of Cryogenics, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
School of Future Technology, University of Chinese Academy of Sciences, Beijing 100049, China.
Micromachines (Basel). 2021 Dec 10;12(12):1539. doi: 10.3390/mi12121539.
Room temperature liquid metal (LM) showcases a great promise in the fields of flexible functional thin film due to its favorable characteristics of flexibility, inherent conductivity, and printability. Current fabrication strategies of liquid metal film are substrate structure specific and sustain from unanticipated smearing effects. Herein, this paper reported a facile fabrication of liquid metal composite film via sequentially regulating oxidation to change the adhesion characteristics, targeting the ability of electrical connection and electrothermal conversion. The composite film was then made of the electrically resistive layer (oxidizing liquid metal) and the insulating Polyimide film (PI film) substrate, which has the advantages of electrical insulation and ultra-wide temperature working range, and its thickness is only 50 μm. The electrical resistance of composite film can maintain constant for 6 h and could work normally. Additionally, the heating film exhibited excellent thermal switching characteristics that can reach temperature equilibrium within 100 s, and recovery to ambient temperature within 50 s. The maximum working temperature of the as-prepared film is 115 °C, which is consistent with the result of the theoretical calculation, demonstrating a good electrothermal conversion capability. Finally, the heating application under extreme low temperature (-196 °C) was achieved. This conceptual study showed the promising value of the prototype strategy to the specific application areas such as the field of smart homes, flexible electronics, wearable thermal management, and high-performance heating systems.
室温液态金属(LM)因其具有柔韧性、固有导电性和可印刷性等优良特性,在柔性功能薄膜领域展现出巨大的潜力。目前液态金属薄膜的制备策略依赖于特定的基底结构,且存在意外的涂抹效应。在此,本文报道了一种通过依次调节氧化来改变粘附特性的简便方法制备液态金属复合薄膜,旨在实现电连接和电热转换能力。该复合薄膜由电阻层(氧化液态金属)和具有电绝缘和超宽温度工作范围优点且厚度仅为50μm的绝缘聚酰亚胺薄膜(PI薄膜)基底制成。复合薄膜的电阻可在6小时内保持恒定且能正常工作。此外,加热薄膜表现出优异的热开关特性,能在100秒内达到温度平衡,并在50秒内恢复到环境温度。所制备薄膜的最高工作温度为115℃,与理论计算结果一致,展示了良好的电热转换能力。最后,实现了在极低温(-196℃)下的加热应用。这项概念性研究表明了该原型策略在智能家居、柔性电子、可穿戴热管理和高性能加热系统等特定应用领域的潜在价值。