An Ultrastretchable and Self-Healable Nanocomposite Conductor Enabled by Autonomously Percolative Electrical Pathways

Sun Hong Kim, Hyunseon Seo, Jiheong Kang, Jaeyoung Hong, Duhwan Seong, Han Jin Kim, Jaemin Kim, Jaewan Mun, Inchan Youn, Jinseok Kim, Yu Chan Kim, Hyun Kwang Seok, Changhee Lee, Jeffrey B.H. Tok, Zhenan Bao, Donghee Son

Research output: Contribution to journalArticlepeer-review

109 Scopus citations

Abstract

Both self-healable conductors and stretchable conductors have been previously reported. However, it is still difficult to simultaneously achieve high stretchability, high conductivity, and self-healability. Here, we observed an intriguing phenomenon, termed electrical self-boosting, which enables reconstructing of electrically percolative pathways in an ultrastretchable and self-healable nanocomposite conductor (over 1700% strain). The autonomously reconstructed percolative pathways were directly verified by using microcomputed tomography and in situ scanning electron microscopy. The encapsulated nanocomposite conductor shows exceptional conductivity (average value: 2578 S cm1 highest value: 3086 S cm1) at 3500% tensile strain by virtue of efficient strain energy dissipation of the self-healing polymer and self-alignment and rearrangement of silver flakes surrounded by spontaneously formed silver nanoparticles and their self-assembly in the strained self-healing polymer matrix. In addition, the conductor maintains high conductivity and stretchability even after recovered from a complete cut. Besides, a design of double-layered conductor enabled by the self-bonding assembly allowed a conducting interface to be located on the neutral mechanical plane, showing extremely durable operations in a cyclic stretching test. Finally, we successfully demonstrated that electromyogram signals can be monitored by our self-healable interconnects. Such information was transmitted to a prosthetic robot to control various hand motions for robust interactive human-robot interfaces.

Original languageEnglish
Pages (from-to)6531-6539
Number of pages9
JournalACS Nano
Volume13
Issue number6
DOIs
StatePublished - 25 Jun 2019

Keywords

  • electrical self-boosting
  • human-robot interfaces
  • Nanocomposite conductor
  • self-healability
  • ultrastretchability

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