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Height-renderable morphable tactile display enabled by programmable modulation of local stiffness in photothermally active polymer

Author

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  • Inwook Hwang

    (Electronics and Telecommunications Research Institute)

  • Seongcheol Mun

    (Electronics and Telecommunications Research Institute)

  • Jung-Hwan Youn

    (Electronics and Telecommunications Research Institute)

  • Hyeong Jun Kim

    (Inha University)

  • Seung Koo Park

    (Electronics and Telecommunications Research Institute)

  • Meejeong Choi

    (Electronics and Telecommunications Research Institute)

  • Tae June Kang

    (Inha University)

  • Qibing Pei

    (Henry Samueli School of Engineering and Applied Science, University of California)

  • Sungryul Yun

    (Electronics and Telecommunications Research Institute)

Abstract

Reconfigurable tactile displays are being used to provide refreshable Braille information; however, the delivered information is currently limited to an alternative of Braille because of difficulties in controlling the deformation height. Herein, we present a photothermally activated polymer-bilayer-based morphable tactile display that can programmably generate tangible three-dimensional topologies with varying textures on a thin film surface. The morphable tactile display was composed of a heterogeneous polymer structure that integrated a stiffness-tunable polymer into a light-absorbing elastomer, near-infra-red light-emitting diode (NIR-LED) array, and small pneumatic chamber. Topological expression was enabled by producing localized out-of-plane deformation that was reversible, height-adjustable, and latchable in response to light-triggered stiffness modulation at each target area under switching of stationary pneumatic pressure. Notably, the tactile display could express a spatial softness map of the latched topology upon re-exposing the target areas to modulated light from the NIR-LED array. We expect the developed tactile display to open a pathway for generating high-dimensional tactile information on electronic devices and enable realistic interaction in augmented and virtual environments.

Suggested Citation

  • Inwook Hwang & Seongcheol Mun & Jung-Hwan Youn & Hyeong Jun Kim & Seung Koo Park & Meejeong Choi & Tae June Kang & Qibing Pei & Sungryul Yun, 2024. "Height-renderable morphable tactile display enabled by programmable modulation of local stiffness in photothermally active polymer," Nature Communications, Nature, vol. 15(1), pages 1-13, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-46709-7
    DOI: 10.1038/s41467-024-46709-7
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    References listed on IDEAS

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    1. Yoshihiro Tanaka & Wouter M Bergmann Tiest & Astrid M L Kappers & Akihito Sano, 2014. "Contact Force and Scanning Velocity during Active Roughness Perception," PLOS ONE, Public Library of Science, vol. 9(3), pages 1-11, March.
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