Bioinspired conductive cellulose liquid-crystal hydrogels as multifunctional electrical skins

Proc Natl Acad Sci U S A. 2020 Aug 4;117(31):18310-18316. doi: 10.1073/pnas.2007032117. Epub 2020 Jul 16.

Abstract

Bionic electronic skin (E-skin) that could convert external physical or mechanical stimuli into output signals has a wide range of applications including wearable devices, artificial prostheses, software robots, etc. Here, we present a chameleon-inspired multifunctional E-skin based on hydroxypropyl cellulose (HPC), Poly(Acrylamide-co-Acrylic acid) (PACA), and carbon nanotubes (CNTs) composited liquid-crystal hydrogel. We found that the HPC could still form cholesteric liquid-crystal photonic structures with the CNTs additive for enhancing their color saturation and PACA polymerization for locating their assembled periodic structures. As the composite hydrogel containing HPC elements and the PACA scaffold responds to different stimuli, such as temperature variations, mechanical pressure, and tension, it could correspondingly change its volume or internal nanostructure and report these as visible color switches. In addition, due to the additive of CNTs, the composite hydrogel could also output these stimuli as electrical resistance signals. Thus, the hydrogel E-skins had the ability of quantitatively feeding back external stimuli through electrical resistance as well as visually mapping the stimulating sites by color variation. This dual-signal sensing provides the ability of visible-user interaction as well as antiinterference, endowing the multifunctional E-skin with great application prospects.

Keywords: bioinspired; carbon nanotube; cellulose; electrical skin; liquid crystal.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cellulose / chemistry*
  • Color
  • Electric Conductivity*
  • Hydrogels / chemistry*
  • Liquid Crystals*
  • Optical Phenomena
  • Wearable Electronic Devices*

Substances

  • Hydrogels
  • Cellulose