Nature Communications (Sep 2023)

Programmable nanocomposites of cellulose nanocrystals and zwitterionic hydrogels for soft robotics

  • Rasool Nasseri,
  • Negin Bouzari,
  • Junting Huang,
  • Hossein Golzar,
  • Sarah Jankhani,
  • Xiaowu (Shirley) Tang,
  • Tizazu H. Mekonnen,
  • Amirreza Aghakhani,
  • Hamed Shahsavan

DOI
https://doi.org/10.1038/s41467-023-41874-7
Journal volume & issue
Vol. 14, no. 1
pp. 1 – 15

Abstract

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Abstract Stimuli-responsive hydrogels have garnered significant attention as a versatile class of soft actuators. Introducing anisotropic properties, and shape-change programmability to responsive hydrogels promises a host of opportunities in the development of soft robots. Herein we report the synthesis of pH-responsive hydrogel nanocomposites with predetermined microstructural anisotropy, shape-transformation, and self-healing. Our hydrogel nanocomposites are largely composed of zwitterionic monomers and asymmetric cellulose nanocrystals. While the zwitterionic nature of the network imparts both self-healing and cytocompatibility to our hydrogel nanocomposites, the shear-induced alignment of cellulose nanocrystals renders their anisotropic swelling and mechanical properties. Thanks to the self-healing properties, we utilized a cut-and-paste approach to program reversible, and complex deformation into our hydrogels. As a proof-of-concept, we demonstrated the transport of light cargo using tethered and untethered soft robots made from our hydrogels. We believe the proposed material system introduce a powerful toolbox for the development of future generations of biomedical soft robots.