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DNA 构建的二维超弹性纳米结构*。

Auxetic Two-Dimensional Nanostructures from DNA*.

机构信息

School of Mechanical Engineering, Purdue University, West Lafayette, IN, 47907, USA.

出版信息

Angew Chem Int Ed Engl. 2021 Mar 22;60(13):7165-7173. doi: 10.1002/anie.202014729. Epub 2021 Feb 22.

Abstract

Architectured materials exhibit negative Poisson's ratios and enhanced mechanical properties compared with regular materials. Their auxetic behaviors emerge from periodic cellular structures regardless of the materials used. The majority of such metamaterials are constructed by top-down approaches and macroscopic with unit cells of microns or larger. There are also molecular auxetics including natural crystals which are not designable. There is a gap from few nanometers to microns, which may be filled by biomolecular self-assembly. Herein, we demonstrate two-dimensional auxetic nanostructures using DNA origami. Structural reconfigurations are performed by two-step DNA reactions and complemented by mechanical deformation studies using molecular dynamics simulations. We find that the auxetic behaviors are mostly defined by geometrical designs, yet the properties of the materials also play an important role. From elasticity theory, we introduce design principles for auxetic DNA metamaterials.

摘要

结构材料与常规材料相比具有负泊松比和增强的机械性能。它们的各向异性行为源自周期性的细胞结构,而与所使用的材料无关。这些超材料大多是通过自上而下的方法和宏观方法构建的,其单元尺寸为微米或更大。还有一些分子超弹性材料,包括不可设计的天然晶体。从几纳米到微米之间存在一个差距,这可以通过生物分子自组装来填补。在这里,我们使用 DNA 折纸术展示了二维各向异性纳米结构。结构重配置通过两步 DNA 反应来完成,并通过分子动力学模拟进行机械变形研究来补充。我们发现,各向异性行为主要由几何设计定义,但材料的性质也起着重要作用。从弹性理论出发,我们为各向异性 DNA 超材料引入了设计原则。

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