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基于具有剪纸结构的纤维素纳米纸的弹性机械超材料

Resilient Mechanical Metamaterial Based on Cellulose Nanopaper with Kirigami Structure.

作者信息

Fujita Tadaoki, Nakagawa Daisuke, Komiya Kazuma, Ohira Shingo, Hanasaki Itsuo

机构信息

Institute of Engineering, Tokyo University of Agriculture and Technology, 2-24-16 Naka-cho, Koganei 184-8588, Tokyo, Japan.

出版信息

Nanomaterials (Basel). 2022 Jul 15;12(14):2431. doi: 10.3390/nano12142431.

Abstract

Nanopapers fabricated from cellulose nanofibers (CNFs) are flexible for bending while they are rather stiff against stretching, which is a common feature shared by conventional paper-based materials in contrast with typical elastomers. Cellulose nanopapers have therefore been expected to be adopted in flexible device applications, but their lack of stretching flexibility can be a bottleneck for specific situations. The high stretching flexibility of nanopapers can effectively be realized by the implementation of Kirigami structures, but there has never been discussion on the mechanical resilience where stretching is not a single event. In this study, we experimentally revealed the mechanical resilience of nanopapers implemented with Kirigami structures for stretching flexibility by iterative tensile tests with large strains. Although the residual strains are found to increase with larger maximum strains and a larger number of stretching cycles, the high mechanical resilience was also confirmed, as expected for moderate maximum strains. Furthermore, we also showed that the round edges of cut patterns instead of bare sharp ones significantly improve the mechanical resilience for harsh stretching conditions. Thus, the design principle of relaxing the stress focusing is not only important in circumventing fractures but also in realizing mechanical resilience.

摘要

由纤维素纳米纤维(CNF)制成的纳米纸在弯曲时具有柔韧性,但在拉伸时相当坚硬,这是传统纸质材料与典型弹性体相比的一个共同特征。因此,纤维素纳米纸有望应用于柔性器件,但它们缺乏拉伸柔韧性可能成为特定情况下的一个瓶颈。通过实施折纸结构可以有效地实现纳米纸的高拉伸柔韧性,但对于拉伸不是单一事件的机械弹性,从未有过相关讨论。在本研究中,我们通过大应变的迭代拉伸试验,实验揭示了采用折纸结构以实现拉伸柔韧性的纳米纸的机械弹性。尽管发现残余应变会随着最大应变的增大和拉伸循环次数的增加而增加,但对于适度的最大应变,高机械弹性也得到了证实。此外,我们还表明,切割图案的圆形边缘而非裸露的尖锐边缘,在恶劣拉伸条件下能显著提高机械弹性。因此,缓解应力集中的设计原则不仅在避免断裂方面很重要,而且在实现机械弹性方面也很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d813/9323529/4d394111899f/nanomaterials-12-02431-g001.jpg

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