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Tessellation of Chiral-Nematic Cellulose Nanocrystal Films by Microtemplating

DOI:10.1002/adfm.201808518 期刊:Advanced Functional Materials 出版年份:2019 更新时间:2025-11-21 11:01:37
摘要: In biological architectures, material properties are optimized by the hierarchical structuring of components with a multiscaled order, from the nano- to the macroscales. Such designs enable, for instance, programmed yield points that maximize toughness. However, research efforts in biomimetic materials have focused on the assembly of nano- or macrostructures individually. In this study, high strength cellulose nanocrystals (CNCs), assembled into chiral-nematically ordered structures, are tiled into a higher level, macro-sized, architecture by topographical templating. As templates, two meshed architectures with distinct feature sizes are evaluated, and the optomechanical properties of the resulting films are compared to featureless, flat, CNC films. Controlling capillary stresses arising during CNC assembly is shown to enable control over the orientation of the chiral-nematic director across the topography of the template. Tuning the specific reflections and multiscaled fracture propagation is demonstrated for the microtemplated CNC films. The latter phenomenon contributed to enhancing the toughness of the material through a high tortuosity of fracture propagation in all (x, y, z) directions. The presented findings are expected to pave the way towards the incorporation of current research in cellular metamaterials with the research focusing on the generation of nanoscaled biomimetic constructs.
作者: Blaise L. Tardy,Bruno D. Mattos,Luiz G. Greca,Tero K?m?r?inen,Konrad W. Klockars,Orlando J. Rojas
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To bridge the gap in biomimetic materials research by combining nano- and macroscale structuring using cellulose nanocrystals (CNCs) assembled into chiral-nematically ordered structures through topographical templating, aiming to enhance optomechanical properties such as toughness and specific reflections.

The topographical templating of CNC films enables control over optical properties and enhances mechanical toughness through multiscaled fracture propagation. This approach bridges nano- and macroscale biomimetic materials, offering new design paradigms for lightweight, strong, and tough composites with potential applications in cellular metamaterials.

The study is limited to specific meshed architectures (f30 and f59), and the smallest topographical features replicated are on the order of film thickness. Scaling to more complex architectures may require computational simulations. Residual stresses and defects can occur if capillary forces are not properly controlled.

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