4D printing modular twisting metamaterials with reprogrammable functionality and reconfigurable deformation

Developing torsional mechanical metamaterials capable of delivering reconfigurable and adaptive responses through compression-torsion coupling remains a significant challenge. Here, we present a bioinspired multifunctional twisting mechanical metamaterial (MTMM) featuring a modular chiral architecture composed exclusively of plates and chiral rods, enabling plug-and-play assembly and repeatedly reprogrammable switching among three discrete chiral states. The programmable chiral heterogeneity enables MTMM arrays to exhibit cooperative deformation, thereby supporting diverse programmable functionalities, including a tailorable Poisson’s ratio, controlled shape morphing, and mechanical signal encoding and transmission. Moreover, replacing the chiral rods with counterparts containing different inner-aperture sizes enables systematic reconfiguration of the global load–displacement response, including its stiffness level, deformation sequence. This provides a versatile strategy for tailoring the mechanical response to different energy-absorption and vibration-isolation requirements. An MTMM system connected in series further demonstrates high reliability, ease of maintenance, and reusability, highlighting its potential for impact-protection applications such as lander buffering. Overall, the MTMM establishes a scalable design paradigm for multifunctional twisting metamaterials and significantly expands the design space for programmable mechanical properties and functional integration.

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Publication Details

Journal
Engineering Structures
Published
2026-09-14
DOI
https://doi.org/10.1016/j.engstruct.2026.123754
Primary Topic
Advanced Materials and Mechanics
Type
article
Field-Weighted Citation Impact
0.00

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article

4D printing modular twisting metamaterials with reprogrammable functionality and reconfigurable deformation

Shuai Fu, Yifan Lu, Paolo Colombo, Honghao Yue et al.
Engineering Structures
Advanced Materials and Mechanics
article

4D printing modular twisting metamaterials with reprogrammable functionality and reconfigurable deformation

Shuai Fu, Yifan Lu, Paolo Colombo, Honghao Yue, Siqi Ma, Xiaodi Feng
article en

Abstract

Developing torsional mechanical metamaterials capable of delivering reconfigurable and adaptive responses through compression-torsion coupling remains a significant challenge. Here, we present a bioinspired multifunctional twisting mechanical metamaterial (MTMM) featuring a modular chiral architecture composed exclusively of plates and chiral rods, enabling plug-and-play assembly and repeatedly reprogrammable switching among three discrete chiral states. The programmable chiral heterogeneity enables MTMM arrays to exhibit cooperative deformation, thereby supporting diverse programmable functionalities, including a tailorable Poisson’s ratio, controlled shape morphing, and mechanical signal encoding and transmission. Moreover, replacing the chiral rods with counterparts containing different inner-aperture sizes enables systematic reconfiguration of the global load–displacement response, including its stiffness level, deformation sequence. This provides a versatile strategy for tailoring the mechanical response to different energy-absorption and vibration-isolation requirements. An MTMM system connected in series further demonstrates high reliability, ease of maintenance, and reusability, highlighting its potential for impact-protection applications such as lander buffering. Overall, the MTMM establishes a scalable design paradigm for multifunctional twisting metamaterials and significantly expands the design space for programmable mechanical properties and functional integration.

Engineering StructuresVol. 368
Pennsylvania State University (US), University of Padua (IT), Harbin Institute of Technology (CN), Center for Advancing Electronics Dresden (DE), Technische Universität Dresden (DE)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, National University's Basic Research Foundation of China
Affordable and clean energy
Openalex Percentile: Top 21%
Advanced Materials and Mechanics
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