Adolphe Merkle Institute, University of Fribourg , Chemin des Verdiers 4, 1700 Fribourg, Switzerland.
Chem Rev. 2017 Oct 25;117(20):12851-12892. doi: 10.1021/acs.chemrev.7b00168. Epub 2017 Jul 28.
Materials with switchable mechanical properties are widespread in living organisms and endow many species with traits that are essential for their survival. Many of the mechanically morphing materials systems found in nature are based on hierarchical structures, which are the basis for mechanical robustness and often also the key to responsive behavior. Many "operating principles" involve cascades of events that translate cues from the environment into changes of the overall structure and/or the connectivity of the constituting building blocks at various levels. These concepts permit dramatic property variations without significant compositional changes. Inspired by the function and the growing understanding of the operating principles at play in biological materials with the capability to change their mechanical properties, significant efforts have been made toward mimicking such architectures and functions in artificial materials. Research in this domain has rapidly grown in the last two decades and afforded many examples of bioinspired materials that are able to reversibly alter their stiffness, shape, porosity, density, or hardness upon remote stimulation. This review summarizes the state of research in this field.
具有可切换机械性能的材料在生物体中广泛存在,赋予了许多物种生存所必需的特性。自然界中许多机械变形材料系统都是基于层次结构,这是机械鲁棒性的基础,通常也是响应行为的关键。许多“工作原理”涉及一系列事件,这些事件将环境中的线索转化为整体结构的变化,以及/或者在不同层次上构成构建块的连接性的变化。这些概念允许在不显著改变组成的情况下发生显著的性能变化。受能够改变其机械性能的生物材料的功能和对其工作原理的理解的启发,人们已经做出了巨大的努力来模仿这些结构和功能在人工材料中的应用。在过去的二十年中,该领域的研究迅速发展,并提供了许多能够在远程刺激下可逆地改变其刚度、形状、孔隙率、密度或硬度的仿生材料的例子。这篇综述总结了该领域的研究现状。