Publication | Open Access
Universal composition–structure–property maps for natural and biomimetic platelet–matrix composites and stacked heterostructures
108
Citations
50
References
2015
Year
EngineeringBiomimetic MaterialsMicromechanicsMechanical EngineeringMultiscale MaterialBiomedical EngineeringBiomimetic Platelet–matrix CompositesPlatelet-matrix CompositesMicrostructure-strength RelationshipMaterials ScienceMaterials EngineeringBiomimetic Platelet-matrix CompositesCompositesMechanical BehaviorStacked HeterostructuresSolid MechanicsUniversal Composition–structure–property MapsStructural CompositionMechanics Of Materials
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.
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