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August 25, 2025Advanced Science40 citationsOpen Access

Multi‐Physically Programmable Tubular Origami Metamaterials: Exploitable Nexus of Geometry, Folding Mechanics and Stimuli‐Responsive Physics

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ASAanchna SharmaSNSusmita NaskarTMT. Mukhopadhyay

Key Points

  • Unique mechanical properties emerge from multi-physical interactions in tubular origami metamaterials, enhancing performance.
  • Demonstrated features include stiffness modulation and programmable dynamic behavior across diverse applications.
  • Observation of advanced programmability through stimuli-responsive physics improves mechanical efficiencies and reconfigurability.
  • Highlights the need for further research to overcome challenges and fully harness the potential of origami metamaterials.

Abstract

Abstract Metamaterials and metastructures developed based on tubular origami‐inspired structural forms can leverage the convolution of geometry, crease mechanics and stimuli‐responsive physics to provide unique mechanical and functional properties, including geometric efficiency and compactness, deployability and reconfigurability, structural integration ability in complex shapes, stiffness and strength modulation, constitutive programming and deformation mode coupling, high specific energy absorption, multi‐stability, and programmable dynamic behavior, leading to diverse applications in the field of mechanical, robotics, space, electronic devices and communication, biomedical, and architecture. With stupendous advancement over the last decade in computational and manufacturing capabilities to realize complex crease architectures along with on‐demand programmability through coupling folding‐driven mechanics with stimuli‐responsive physics of electrical or magnetic fields, temperature, light, controlled chemical reactions, and pneumatic actuation, the field of origami‐inspired mechanical metamaterials has been attracting wide attention due to immense potential of achieving unprecedented multi‐physical and multi‐functional attributes that are typically not attainable in naturally‐occurring materials or traditional structures. This article endeavours to review the developments reported in relevant literature concerning mechanical and multi‐physical property modulation of tubular origami metamaterials, highlighting the broad‐spectrum potential in innovative applications across the length scales along with critically analysing the emerging trends, challenges and potential future research landscape.

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Cite This Study

Sharma et al. (2025) studied this question.

synapsesocial.com/papers/68af5f1ead7bf08b1eae266bhttps://doi.org/10.1002/advs.202505089
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