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A dynamically reprogrammable surface with self-evolving shape morphing.

Publication ,  Journal Article
Bai, Y; Wang, H; Xue, Y; Pan, Y; Kim, J-T; Ni, X; Liu, T-L; Yang, Y; Han, M; Huang, Y; Rogers, JA; Ni, X
Published in: Nature
September 2022

Dynamic shape-morphing soft materials systems are ubiquitous in living organisms; they are also of rapidly increasing relevance to emerging technologies in soft machines1-3, flexible electronics4,5 and smart medicines6. Soft matter equipped with responsive components can switch between designed shapes or structures, but cannot support the types of dynamic morphing capabilities needed to reproduce natural, continuous processes of interest for many applications7-24. Challenges lie in the development of schemes to reprogram target shapes after fabrication, especially when complexities associated with the operating physics and disturbances from the environment can stop the use of deterministic theoretical models to guide inverse design and control strategies25-30. Here we present a mechanical metasurface constructed from a matrix of filamentary metal traces, driven by reprogrammable, distributed Lorentz forces that follow from the passage of electrical currents in the presence of a static magnetic field. The resulting system demonstrates complex, dynamic morphing capabilities with response times within 0.1 second. Implementing an in situ stereo-imaging feedback strategy with a digitally controlled actuation scheme guided by an optimization algorithm yields surfaces that can follow a self-evolving inverse design to morph into a wide range of three-dimensional target shapes with high precision, including an ability to morph against extrinsic or intrinsic perturbations. These concepts support a data-driven approach to the design of dynamic soft matter, with many unique characteristics.

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Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

September 2022

Volume

609

Issue

7928

Start / End Page

701 / 708

Related Subject Headings

  • General Science & Technology
 

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Bai, Y., Wang, H., Xue, Y., Pan, Y., Kim, J.-T., Ni, X., … Rogers, J. A. (2022). A dynamically reprogrammable surface with self-evolving shape morphing. Nature, 609(7928), 701–708. https://doi.org/10.1038/s41586-022-05061-w
Bai, Yun, Heling Wang, Yeguang Xue, Yuxin Pan, Jin-Tae Kim, Xinchen Ni, Tzu-Li Liu, et al. “A dynamically reprogrammable surface with self-evolving shape morphing.Nature 609, no. 7928 (September 2022): 701–8. https://doi.org/10.1038/s41586-022-05061-w.
Bai Y, Wang H, Xue Y, Pan Y, Kim J-T, Ni X, et al. A dynamically reprogrammable surface with self-evolving shape morphing. Nature. 2022 Sep;609(7928):701–8.
Bai, Yun, et al. “A dynamically reprogrammable surface with self-evolving shape morphing.Nature, vol. 609, no. 7928, Sept. 2022, pp. 701–08. Epmc, doi:10.1038/s41586-022-05061-w.
Bai Y, Wang H, Xue Y, Pan Y, Kim J-T, Ni X, Liu T-L, Yang Y, Han M, Huang Y, Rogers JA. A dynamically reprogrammable surface with self-evolving shape morphing. Nature. 2022 Sep;609(7928):701–708.
Journal cover image

Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

September 2022

Volume

609

Issue

7928

Start / End Page

701 / 708

Related Subject Headings

  • General Science & Technology