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July 31, 2024Nature CommunicationsOpen Access

Highly conductive and stretchable nanostructured ionogels for 3D printing capacitive sensors with superior performance

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Authors

XHXiangnan HeSouthern University of Science and TechnologyBZBiao ZhangNorthwestern Polytechnical UniversityQLQingjiang LiuHarbin Institute of Technology

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Implication

Experimental study demonstrates highly conductive stretchable ionogels in DLP 3D printing, highlighting an efficient fabrication route for advanced capacitive sensors.

Key Points

  • High ionic conductivity exceeding 3 S m−1 is achieved in nanostructured ionogels, maintaining continuous conducting nanochannels for stretchable ionotronics.
  • Stretchability exceeding 1500% occurs with a minimal mechanical hysteresis of 0.4%, preserving robust network elasticity during capacitive sensor operations.
  • Assessment using DLP 3D printing resolves intricate micro-architectures down to 5 μm, highlighting an efficient fabrication pathway for advanced capacitive sensors.

Cite This Study

He et al. (2024) studied this question.

synapsesocial.com/papers/68e5e2c3b6db643587577dfbhttps://doi.org/10.1038/s41467-024-50797-w
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