超材料
材料科学
辅助
脆性
可扩展性
极限抗拉强度
纳米技术
立体光刻
复合材料
光电子学
计算机科学
数据库
作者
Xiaoyu Zheng,William L. Smith,Julie A. Jackson,Bryan D. Moran,Huachen Cui,Da Chen,Jianchao Ye,Nicholas X. Fang,Nicholas Rodriguez,Todd H. Weisgraber,Christopher M. Spadaccini
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2016-07-18
卷期号:15 (10): 1100-1106
被引量:714
摘要
Materials with three-dimensional micro- and nanoarchitectures exhibit many beneficial mechanical, energy conversion and optical properties. However, these three-dimensional microarchitectures are significantly limited by their scalability. Efforts have only been successful only in demonstrating overall structure sizes of hundreds of micrometres, or contain size-scale gaps of several orders of magnitude. This results in degraded mechanical properties at the macroscale. Here we demonstrate hierarchical metamaterials with disparate three-dimensional features spanning seven orders of magnitude, from nanometres to centimetres. At the macroscale they achieve high tensile elasticity (>20%) not found in their brittle-like metallic constituents, and a near-constant specific strength. Creation of these materials is enabled by a high-resolution, large-area additive manufacturing technique with scalability not achievable by two-photon polymerization or traditional stereolithography. With overall part sizes approaching tens of centimetres, these unique nanostructured metamaterials might find use in a broad array of applications.
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