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Bioinspired rational design of bi-material 3D printed soft-hard interfaces

Mauricio Cruz Saldívar, Edwin Tay, A. Isaakidou, Vahid Moosabeiki, Lidy E. Fratila‐Apachitei, Eugeni L. Doubrovski, Mohammad J. Mirzaali, Amir A. Zadpoor

2023Nature Communications62 citationsDOIOpen Access PDF

Abstract

Durable interfacing of hard and soft materials is a major design challenge caused by the ensuing stress concentrations. In nature, soft-hard interfaces exhibit remarkable mechanical performance, with failures rarely happening at the interface. Here, we mimic the strategies observed in nature to design efficient soft-hard interfaces. We base our geometrical designs on triply periodic minimal surfaces (i.e., Octo, Diamond, and Gyroid), collagen-like triple helices, and randomly distributed particles. A combination of computational simulations and experimental techniques, including uniaxial tensile and quad-lap shear tests, are used to characterize the mechanical performance of the interfaces. Our analyses suggest that smooth interdigitated connections, compliant gradient transitions, and either decreasing or constraining strain concentrations lead to simultaneously strong and tough interfaces. We generate additional interfaces where the abovementioned toughening mechanisms work synergistically to create soft-hard interfaces with strengths approaching the upper achievable limit and enhancing toughness values by 50%, as compared to the control group.

Topics & Concepts

GyroidToughnessMaterials scienceSoft materialsInterfacingRational designComposite materialElastomerNanotechnologyUltimate tensile strengthHard tissueInterface (matter)Computer scienceCopolymerPolymerComputer hardwareDentistryCapillary numberCapillary actionMedicineCalcium Carbonate Crystallization and InhibitionBone Tissue Engineering MaterialsAdditive Manufacturing and 3D Printing Technologies
Bioinspired rational design of bi-material 3D printed soft-hard interfaces | Litcius