4.8 Article

Designing Mechanical Metamaterials with Kirigami-Inspired, Hierarchical Constructions for Giant Positive and Negative Thermal Expansion

期刊

ADVANCED MATERIALS
卷 33, 期 3, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202004919

关键词

giant positive and negative CTEs; hierarchical structures; kirigami designs; mechanical metamaterials; unusual thermal responses

资金

  1. Institute for Guo Qiang, Tsinghua University [2019GQG1012]
  2. National Natural Science Foundation of China [11722217, 11921002, 11702155]
  3. Tsinghua University Initiative Scientific Research Program [2019Z08QCX10]
  4. Tsinghua National Laboratory for Information Science and Technology
  5. Henry Fok Education Foundation
  6. NSF [CMMI1635443]
  7. ARO MURI program
  8. SHyNE Resource [NSF ECCS-2025633]
  9. Northwestern's MRSEC program [NSF DMR-1720139]
  10. IIN

向作者/读者索取更多资源

This study presents a design concept and fabrication strategy for 2D hierarchical metamaterials inspired by kirigami, which can effectively convert thermal mismatch into giant levels of biaxial/uniaxial thermal expansion/shrinkage. Theoretical modeling provides a clear understanding of the microstructure-property relationships and serves as a basis for design choices for desired CTE values. An Ashby plot offers a quantitative comparison of the metamaterials presented in this study to previously reported systems, indicating the ability to substantially enlarge the accessible range of CTE.
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.

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