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Ultrahigh energy-dissipation elastomers by precisely tailoring the relaxation of confined polymer fluids

Author

Listed:
  • Jin Huang

    (Beihang University)

  • Yichao Xu

    (Beihang University
    Beihang University)

  • Shuanhu Qi

    (Beihang University
    Beihang University)

  • Jiajia Zhou

    (Beihang University
    Beihang University)

  • Wei Shi

    (Beihang University)

  • Tianyi Zhao

    (Beihang University)

  • Mingjie Liu

    (Beihang University
    Beihang University
    Beihang University
    Beihang University)

Abstract

Energy-dissipation elastomers relying on their viscoelastic behavior of chain segments in the glass transition region can effectively suppress vibrations and noises in various fields, yet the operating frequency of those elastomers is difficult to control precisely and its range is narrow. Here, we report a synergistic strategy for constructing polymer-fluid-gels that provide controllable ultrahigh energy dissipation over a broad frequency range, which is difficult by traditional means. This is realized by precisely tailoring the relaxation of confined polymer fluids in the elastic networks. The symbiosis of this combination involves: elastic networks forming an elastic matrix that displays reversible deformation and polymer fluids reptating back and forth to dissipate mechanical energy. Using prototypical poly (n-butyl acrylate) elastomers, we demonstrate that the polymer-fluid-gels exhibit a controllable ultrahigh energy-dissipation property (loss factor larger than 0.5) with a broad frequency range (10−2 ~ 108 Hz). Energy absorption of the polymer-fluid-gels is over 200 times higher than that of commercial damping materials under the same dynamic stress. Moreover, their modulus is quasi-stable in the operating frequency range.

Suggested Citation

  • Jin Huang & Yichao Xu & Shuanhu Qi & Jiajia Zhou & Wei Shi & Tianyi Zhao & Mingjie Liu, 2021. "Ultrahigh energy-dissipation elastomers by precisely tailoring the relaxation of confined polymer fluids," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-23984-2
    DOI: 10.1038/s41467-021-23984-2
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    Cited by:

    1. Woojin Choi & Utkarsh Mangal & Jae-Hun Yu & Jeong-Hyun Ryu & Ji‑Yeong Kim & Taesuk Jun & Yoojin Lee & Heesu Cho & Moonhyun Choi & Milae Lee & Du Yeol Ryu & Sang-Young Lee & Se Yong Jung & Jae-Kook Cha, 2024. "Viscoelastic and antimicrobial dental care bioplastic with recyclable life cycle," Nature Communications, Nature, vol. 15(1), pages 1-14, December.

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