4.8 Article

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

期刊

ACS NANO
卷 13, 期 6, 页码 6531-6539

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.9b00160

关键词

nanocomposite conductor; electrical self-boosting; self-healability; ultrastretchability; human-robot interfaces

资金

  1. KIST intramural grants [2E29340, 2E29680]
  2. convergence technology development program for bionic arm through the National Research Foundation of Korea (NRF) - Ministry of Science ICT [2017M3C1B2085292]
  3. Ministry of Trade Industry & Energy (MOTIE, Korea)
  4. Ministry of Science & ICT (MSIT, Korea)
  5. Ministry of Health & Welfare (MOHW, Korea) [20001655]
  6. Air Force Office of Scientific Research [FA9550-18-1-0143]
  7. National Research Foundation of Korea [2017M3C1B2085292] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

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 nano composite conductor (over 1700% strain). The autonomously reconstructed percolative pathways were directly verified by using micro computed tomography and in situ scanning electron microscopy. The encapsulated nanocomposite conductor shows exceptional conductivity (average value: 2578 S cm(-1); highest value: 3086 S cm(-1)) 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.

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