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Bai, Wubin; Shin, Jiho; Fu, Ruxing; Kandela, Irawati; Lu, Di; Ni, Xiaoyue; Park, Yoonseok; Liu, Zhonghe; Hang, Tao; Wu, Di; et al (, Nature Biomedical Engineering)
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Lee, KunHyuck; Ni, Xiaoyue; Lee, Jong Yoon; Arafa, Hany; Pe, David J.; Xu, Shuai; Avila, Raudel; Irie, Masahiro; Lee, Joo Hee; Easterlin, Ryder L.; et al (, Nature Biomedical Engineering)
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Guo, Xiaogang; Ni, Xiaoyue; Li, Jiahong; Zhang, Hang; Zhang, Fan; Yu, Huabin; Wu, Jun; Bai, Yun; Lei, Hongshuai; Huang, Yonggang; et al (, Advanced Materials)Abstract Advanced mechanical metamaterials with unusual thermal expansion properties represent an area of growing interest, due to their promising potential for use in a broad range of areas. In spite of previous work on metamaterials with large or ultralow coefficient of thermal expansion (CTE), achieving a broad range of CTE values with access to large thermally induced dimensional changes in structures with high filling ratios remains a key challenge. Here, design concepts and fabrication strategies for a kirigami‐inspired class of 2D hierarchical metamaterials that can effectively convert the thermal mismatch between two closely packed constituent materials into giant levels of biaxial/uniaxial thermal expansion/shrinkage are presented. At large filling ratios (>50%), these systems offer not only unprecedented negative and positive biaxial CTE (i.e., −5950 and 10 710 ppm K−1), but also large biaxial thermal expansion properties (e.g., > 21% for 20 K temperature increase). Theoretical modeling of thermal deformations provides a clear understanding of the microstructure–property relationships and serves as a basis for design choices for desired CTE values. An Ashby plot of the CTE versus density serves as a quantitative comparison of the hierarchical metamaterials presented here to previously reported systems, indicating the capability for substantially enlarging the accessible range of CTE.more » « less
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