Complex Materials, Department of Materials, ETH Zürich, Zürich 8093, Switzerland.
Adolphe Merkle Institute, University of Fribourg, Fribourg 1700, Switzerland.
ACS Appl Mater Interfaces. 2021 Jun 16;13(23):27481-27490. doi: 10.1021/acsami.1c05964. Epub 2021 Jun 2.
The increasing use of lightweight composite materials in structural applications requires the development of new damage monitoring technologies to ensure their safe use and prevent accidents. Although several molecular strategies have been proposed to report damage in polymers through mechanochromic responses, these approaches have not yet been translated into lightweight bioinspired composites for load-bearing applications. Here, we report on the development of bioinspired laminates of alternating polymer and nacre-like layers that combine optical translucency, high fracture toughness, and damage-reporting capabilities. The composites signal damage via a fluorescence color change that arises from the force activation of mechanophore molecules embedded in the material's polymer phase. A quantitative correlation between the applied strain and the fluorescence intensity was successfully established. We demonstrate that optical imaging of mechanically loaded composites allows for the localized detection of damage prior to fracture. This fluorescence-based self-reporting mechanism offers a promising approach for the early detection of damage in lightweight structural composites and can serve as a useful tool for the analysis of fracture processes in bulk transparent materials.
结构应用中轻质复合材料的使用越来越多,这就需要开发新的损伤监测技术来确保其安全使用和预防事故。尽管已经提出了几种通过机械变色反应来报告聚合物损伤的分子策略,但这些方法尚未转化为用于承重应用的轻质仿生复合材料。在这里,我们报告了具有交替聚合物和珍珠层状层的仿生层压板的开发,这些层压板结合了光学半透明性、高断裂韧性和损伤报告能力。复合材料通过嵌入材料聚合物相中的机械响应分子的力激活来产生荧光颜色变化来发出损伤信号。成功建立了施加应变与荧光强度之间的定量相关性。我们证明,对机械加载复合材料的光学成像可以在断裂前局部检测到损伤。这种基于荧光的自报告机制为轻质结构复合材料中损伤的早期检测提供了一种很有前途的方法,并可以作为分析透明块状材料断裂过程的有用工具。