3D printable high-performance conducting polymer hydrogel for all-hydrogel bioelectronic interfaces

Nat Mater. 2023 Jul;22(7):895-902. doi: 10.1038/s41563-023-01569-2. Epub 2023 Jun 15.

Abstract

Owing to the unique combination of electrical conductivity and tissue-like mechanical properties, conducting polymer hydrogels have emerged as a promising candidate for bioelectronic interfacing with biological systems. However, despite the recent advances, the development of hydrogels with both excellent electrical and mechanical properties in physiological environments is still challenging. Here we report a bi-continuous conducting polymer hydrogel that simultaneously achieves high electrical conductivity (over 11 S cm-1), stretchability (over 400%) and fracture toughness (over 3,300 J m-2) in physiological environments and is readily applicable to advanced fabrication methods including 3D printing. Enabled by these properties, we further demonstrate multi-material 3D printing of monolithic all-hydrogel bioelectronic interfaces for long-term electrophysiological recording and stimulation of various organs in rat models.

MeSH terms

  • Animals
  • Electric Conductivity
  • Hydrogels*
  • Polymers*
  • Printing, Three-Dimensional
  • Rats

Substances

  • Polymers
  • Hydrogels