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Super elastic and negative triboelectric polymer matrix for high performance mechanoluminescent platforms

Author

Listed:
  • Hong In Jeong

    (Hanyang University
    Hanyang University
    Hanyang University
    University of Cambridge)

  • Hye Sung Jung

    (Hanyang University
    Hanyang University
    Hanyang University)

  • Milos Dubajic

    (University of Cambridge)

  • Gunpyo Kim

    (Hanyang University)

  • Woo Hyeon Jeong

    (Sungkyunkwan University)

  • Hochan Song

    (Hanyang University
    Hanyang University
    Hanyang University)

  • Yongju Lee

    (University of Seoul
    University of Seoul)

  • Swarup Biswas

    (University of Seoul
    University of Seoul)

  • Hyeok Kim

    (University of Seoul
    University of Seoul)

  • Bo Ram Lee

    (Sungkyunkwan University)

  • Jae Woong Yoon

    (Hanyang University)

  • Samuel D. Stranks

    (University of Cambridge)

  • Soon Moon Jeong

    (DGIST
    DGIST)

  • Jihoon Lee

    (Hanyang University
    Hanyang University
    Hanyang University)

  • Hyosung Choi

    (Hanyang University
    Hanyang University
    Hanyang University)

Abstract

Mechanoluminescence platforms, combining phosphors with elastic polymer matrix, have emerged in smart wearable technology due to their superior elasticity and mechanically driven luminescent properties. However, their luminescence performance often deteriorates under extreme elastic conditions owing to a misinterpretation of polymer matrix behavior. Here, we unveil the role of the polymer matrices in mechanoluminescence through an interface-triboelectric effect driven by elasticity, achieving both high elasticity and brightness. By investigating interactions between elastic polymers and copper doped zinc sulfide microparticles, we reveal that elasticity significantly governed triboelectric effects for mechanoluminescence. In particular, high negative triboelectricity emerged as the key to overcoming poor triboelectric effect in extreme elastic conditions. This led to the discovery of polybutylene adipate-co-terephthalate silane and polycarbonate silane, achieving remarkable elasticity over 100% and a brightness of 139 cd/m2. These findings offer fundamental insights to select the optimal polymer matrix based on systematic parameters for various smart wearable applications.

Suggested Citation

  • Hong In Jeong & Hye Sung Jung & Milos Dubajic & Gunpyo Kim & Woo Hyeon Jeong & Hochan Song & Yongju Lee & Swarup Biswas & Hyeok Kim & Bo Ram Lee & Jae Woong Yoon & Samuel D. Stranks & Soon Moon Jeong , 2025. "Super elastic and negative triboelectric polymer matrix for high performance mechanoluminescent platforms," Nature Communications, Nature, vol. 16(1), pages 1-11, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-56007-5
    DOI: 10.1038/s41467-025-56007-5
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