4.8 Article

Prestrain Programmable 4D Printing of Nanoceramic Composites with Bioinspired Microstructure

期刊

SMALL
卷 18, 期 47, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202204032

关键词

4D printing; bioinspired microstructures; flexible nanoceramic composites; programmed prestrain

资金

  1. MOE AcRF Tier 1 Grant [WBS A-0009123-01-00]

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This research proposes a conceptual combination of bioinspired microstructure design and a programmable prestrain approach for 4D printing of nanoceramics. By replicating the bioinspired concentric cylinder structure and applying prestrain, the researchers successfully developed flexible nanoceramic composites with superior mechanical performance and anisotropic thermal management capability. Conductive nanoceramic composites with unique sensing capability were also prepared. This breakthrough in 4D printing of ceramics opens up possibilities for high-performance shape morphing materials in extreme conditions.
Four-dimensional (4D) printing enables programmable, predictable, and precise shape change of responsive materials to achieve desirable behaviors beyond conventional three-dimensional (3D) printing. However, applying 4D printing to ceramics remains challenging due to their intrinsic brittleness and inadequate stimuli-responsive ability. Here, this work proposes a conceptional combination of bioinspired microstructure design and a programmable prestrain approach for 4D printing of nanoceramics. To overcome the flexibility limitation, the bioinspired concentric cylinder structure in the struts of 3D printed lattices are replicated to develop origami nanoceramic composites with high inorganic content (95 wt%). Furthermore, 4D printing is achieved by applying a programmed prestrain to the printed lattices, enabling the desired deformation when the prestrain is released. Due to the bioinspired concentric cylinder microstructures, the printed flexible nanoceramic composites exhibit superior mechanical performance and anisotropic thermal management capability. Further, by introducing oxygen vacancies to the ceramic nanosheets, conductive nanoceramic composites are prepared with a unique sensing capability for various sensing applications. Hence, this research breaks through the limitation of ceramics in 4D printing and achieves high-performance shape morphing materials for applications under extreme conditions, such as space exploration and high-temperature systems.

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