Wang Shuang, Li Xiying
School of Physical and Mathematical Sciences, Nanjing Tech University, Nanjing 211816, People's Republic of China.
Robotic Materials Department, Max Planck Institute for Intelligent Systems, Stuttgart, Germany.
J Phys Condens Matter. 2024 Sep 11;36(49). doi: 10.1088/1361-648X/ad765d.
Soft materials containing liquid inclusions have emerged as a promising class of materials. Unlike solid inclusions, liquid inclusions possess intrinsic fluidity, which allows them to retain the excellent deformation ability of soft materials. This can prevent compliance mismatches between the inclusions and the matrix, thus leading to improved performance and durability. Various liquids, including metallic, water-based, and ionic liquids, have been selected as inclusions for embedding into soft materials, resulting in unique properties and functionalities that enable a wide range of applications in soft robotics, wearable devices, and other cutting-edge fields. This review provides an overview of recent studies on the functional properties of composites with liquid inclusions and discusses theoretical models used to estimate these properties, aiming to bridge the gap between the microstructure/components and the overall properties of the composite from a theoretical perspective. Furthermore, current challenges and future opportunities for the widespread application of these composites are explored, highlighting their potential in advancing technologies.
含有液体夹杂物的软材料已成为一类很有前景的材料。与固体夹杂物不同,液体夹杂物具有内在流动性,这使它们能够保持软材料优异的变形能力。这可以防止夹杂物与基体之间的顺应性不匹配,从而提高性能和耐久性。包括金属液体、水基液体和离子液体在内的各种液体已被选作嵌入软材料的夹杂物,从而产生了独特的性能和功能,使其能够在软机器人技术、可穿戴设备和其他前沿领域得到广泛应用。本文综述了近期关于含液体夹杂物复合材料功能特性的研究,并讨论了用于估计这些特性的理论模型,旨在从理论角度弥合复合材料微观结构/组分与整体性能之间的差距。此外,还探讨了这些复合材料广泛应用的当前挑战和未来机遇,突出了它们在推动技术发展方面的潜力。