Zhao Zhibin, Soni Saurabh, Lee Takhee, Nijhuis Christian A, Xiang Dong
Institute of Modern Optics and Center of Single Molecule Sciences, Tianjin Key Laboratory of Micro-scale Optical Information Science and Technology, Nankai University, 300350, Tianjin, P. R. China.
Department of Molecules and Materials, MESA+ Institute for Nanotechnology, Molecules Center and Center for Brain-Inspired Nano Systems, Faculty of Science and Technology, University of Twente, Enschede, 7500 AE, The Netherlands.
Adv Mater. 2023 Jan;35(1):e2203391. doi: 10.1002/adma.202203391. Epub 2022 Nov 20.
Eutectic gallium-indium (EGaIn), a liquid metal with a melting point close to or below room temperature, has attracted extensive attention in recent years due to its excellent properties such as fluidity, high conductivity, thermal conductivity, stretchability, self-healing capability, biocompatibility, and recyclability. These features of EGaIn can be adjusted by changing the experimental condition, and various composite materials with extended properties can be further obtained by mixing EGaIn with other materials. In this review, not only the are unique properties of EGaIn introduced, but also the working principles for the EGaIn-based devices are illustrated and the developments of EGaIn-related techniques are summarized. The applications of EGaIn in various fields, such as flexible electronics (sensors, antennas, electronic circuits), molecular electronics (molecular memory, opto-electronic switches, or reconfigurable junctions), energy catalysis (heat management, motors, generators, batteries), biomedical science (drug delivery, tumor therapy, bioimaging and neural interfaces) are reviewed. Finally, a critical discussion of the main challenges for the development of EGaIn-based techniques are discussed, and the potential applications in new fields are prospected.
共晶镓铟(EGaIn)是一种熔点接近或低于室温的液态金属,近年来因其具有流动性、高导电性、导热性、拉伸性、自愈能力、生物相容性和可回收性等优异性能而备受关注。EGaIn的这些特性可通过改变实验条件来调节,通过将EGaIn与其他材料混合还可进一步获得各种具有扩展性能的复合材料。在这篇综述中,不仅介绍了EGaIn的独特性能,还阐述了基于EGaIn的器件的工作原理,并总结了EGaIn相关技术的发展情况。综述了EGaIn在各个领域的应用,如柔性电子学(传感器、天线、电子电路)、分子电子学(分子存储器、光电开关或可重构结)、能量催化(热管理、电机、发电机、电池)、生物医学科学(药物递送、肿瘤治疗、生物成像和神经接口)。最后,对基于EGaIn的技术发展面临的主要挑战进行了批判性讨论,并展望了在新领域的潜在应用。