Rippled metamaterials with scale-dependent tailorable elasticity

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2025-03-19 DOI:10.1073/pnas.2425200122
Jian Zhou, Richard Huang, Nicolaie Moldovan, Liliana Stan, Jianguo Wen, Dafei Jin, David R. Nelson, Andrej Košmrlj, David A. Czaplewski, Daniel López
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Abstract

Thermally induced ripples are intrinsic features of nanometer-thick films, atomically thin materials, and cell membranes, significantly affecting their elastic properties. Despite decades of theoretical studies on the mechanics of suspended thermalized sheets, controversy still exists over the impact of these ripples, with conflicting predictions about whether elasticity is scale-dependent or scale-independent. Experimental progress has been hindered so far by the inability to have a platform capable of fully isolating and characterizing the effects of ripples. This knowledge gap limits the fundamental understanding of thin materials and their practical applications. Here, we show that thermal-like static ripples shape thin films into a class of metamaterials with scale-dependent, customizable elasticity. Utilizing a scalable semiconductor manufacturing process, we engineered nanometer-thick films with precisely controlled frozen random ripples, resembling snapshots of thermally fluctuating membranes. Resonant frequency measurements of rippled cantilevers reveal that random ripples effectively renormalize and enhance the average bending rigidity and sample-to-sample variations in a scale-dependent manner, consistent with recent theoretical estimations. The predictive power of the theoretical model, combined with the scalability of the fabrication process, was further exploited to create kirigami architectures with tailored bending rigidity and mechanical metamaterials with delayed buckling instability.
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具有尺度依赖的可定制弹性的波纹超材料
热致波纹是纳米厚薄膜、原子薄材料和细胞膜的固有特性,对其弹性性能有重要影响。尽管对悬浮热化薄片的力学进行了数十年的理论研究,但关于这些波纹的影响仍然存在争议,关于弹性是依赖于尺度还是不依赖于尺度的预测相互矛盾。迄今为止,实验进展一直受到阻碍,因为无法建立一个能够完全隔离和表征涟漪效应的平台。这种知识差距限制了对薄材料及其实际应用的基本理解。在这里,我们展示了类似热的静态波纹将薄膜塑造成一类具有尺度依赖性,可定制弹性的超材料。利用可扩展的半导体制造工艺,我们设计了纳米厚的薄膜,具有精确控制的冻结随机波纹,类似于热波动膜的快照。波纹悬臂梁的谐振频率测量表明,随机波纹有效地以尺度相关的方式重新规范化并增强了平均弯曲刚度和样本间的变化,这与最近的理论估计一致。理论模型的预测能力与制造工艺的可扩展性相结合,进一步开发了具有定制弯曲刚度的kirigami结构和具有延迟屈曲不稳定性的机械超材料。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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