Department of Civil and Environmental Engineering, Rice University, Houston, Texas 77005, USA.
1] Department of Civil and Environmental Engineering, Rice University, Houston, Texas 77005, USA [2] Department of Material Science and NanoEngineering, Rice University, Houston, Texas 77005, USA [3] Smalley Institute for Nanoscale Science and Technology, Rice University, Houston, Texas 77005, USA.
Nat Commun. 2015 Mar 16;6:6523. doi: 10.1038/ncomms7523.
Many natural and biomimetic platelet-matrix composites--such as nacre, silk, and clay-polymer-exhibit a remarkable balance of strength, toughness and/or stiffness, which call for a universal measure to quantify this outstanding feature given the structure and material characteristics of the constituents. Analogously, there is an urgent need to quantify the mechanics of emerging electronic and photonic systems such as stacked heterostructures. Here we report the development of a unified framework to construct universal composition-structure-property diagrams that decode the interplay between various geometries and inherent material features in both platelet-matrix composites and stacked heterostructures. We study the effects of elastic and elastic-perfectly plastic matrices, overlap offset ratio and the competing mechanisms of platelet versus matrix failures. Validated by several 3D-printed specimens and a wide range of natural and synthetic materials across scales, the proposed universally valid diagrams have important implications for science-based engineering of numerous platelet-matrix composites and stacked heterostructures.
许多天然和仿生血小板-基质复合材料——如珍珠层、丝绸和粘土-聚合物——表现出出色的强度、韧性和/或刚度平衡,这需要一种通用的方法来量化这种出色特性,考虑到组成成分的结构和材料特性。类似地,迫切需要量化新兴电子和光子系统的力学特性,如堆叠异质结构。在这里,我们报告了开发统一框架的进展,以构建通用的组成-结构-性能图,该图解码了血小板-基质复合材料和堆叠异质结构中各种几何形状和固有材料特征之间的相互作用。我们研究了弹性和弹塑性基质、重叠偏移比以及血小板与基质失效的竞争机制的影响。通过几个 3D 打印样本和广泛的天然和合成材料在不同尺度上进行验证,所提出的通用有效图对于基于科学的大量血小板-基质复合材料和堆叠异质结构的工程设计具有重要意义。