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Self-regulated reversal deformation and locomotion of structurally homogenous hydrogels subjected to constant light illumination

Author

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  • Kexin Guo

    (University of Science and Technology of China
    Chinese Academy of Sciences
    University of Science and Technology of China)

  • Xuehan Yang

    (University of Science and Technology of China)

  • Chao Zhou

    (Chinese Academy of Sciences
    University of Science and Technology of China)

  • Chuang Li

    (University of Science and Technology of China)

Abstract

Environmentally adaptive hydrogels that are capable of reconfiguration in response to external stimuli have shown great potential toward bioinspired actuation and soft robotics. Previous efforts have focused mainly on either the sophisticated design of heterogeneously structured hydrogels or the complex manipulation of external stimuli, and achieving self-regulated reversal shape deformation in homogenous hydrogels under a constant stimulus has been challenging. Here, we report the molecular design of structurally homogenous hydrogels containing simultaneously two spiropyrans that exhibit self-regulated transient deformation reversal when subjected to constant illumination. The deformation reversal mechanism originates from the molecular sequential descending-ascending charge variation of two coexisting spiropyrans upon irradiation, resulting in a macroscale volumetric contraction-expansion of the hydrogels. Hydrogel film actuators were developed to display complex temporary bidirectional shape transformations and self-regulated reversal rolling under constant illumination. Our work represents an innovative strategy for programming complex shape transformations of homogeneous hydrogels using a single constant stimulus.

Suggested Citation

  • Kexin Guo & Xuehan Yang & Chao Zhou & Chuang Li, 2024. "Self-regulated reversal deformation and locomotion of structurally homogenous hydrogels subjected to constant light illumination," Nature Communications, Nature, vol. 15(1), pages 1-12, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-46100-6
    DOI: 10.1038/s41467-024-46100-6
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    1. Yue Zhang & Kangkang Liu & Tao Liu & Chujun Ni & Di Chen & Jiamei Guo & Chang Liu & Jian Zhou & Zheng Jia & Qian Zhao & Pengju Pan & Tao Xie, 2021. "Differential diffusion driven far-from-equilibrium shape-shifting of hydrogels," Nature Communications, Nature, vol. 12(1), pages 1-8, December.
    2. Shanming Hu & Yuhuang Fang & Chen Liang & Matti Turunen & Olli Ikkala & Hang Zhang, 2023. "Thermally trainable dual network hydrogels," Nature Communications, Nature, vol. 14(1), pages 1-10, December.
    3. Ji Liu & Shaoting Lin & Xinyue Liu & Zhao Qin & Yueying Yang & Jianfeng Zang & Xuanhe Zhao, 2020. "Fatigue-resistant adhesion of hydrogels," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
    4. Bin Xue & Zoobia Bashir & Yachong Guo & Wenting Yu & Wenxu Sun & Yiran Li & Yiyang Zhang & Meng Qin & Wei Wang & Yi Cao, 2023. "Strong, tough, rapid-recovery, and fatigue-resistant hydrogels made of picot peptide fibres," Nature Communications, Nature, vol. 14(1), pages 1-10, December.
    5. Lidong Zhang & Haoran Liang & Jolly Jacob & Panče Naumov, 2015. "Photogated humidity-driven motility," Nature Communications, Nature, vol. 6(1), pages 1-12, November.
    6. Qingyuan Bian & Linglan Fu & Hongbin Li, 2022. "Engineering shape memory and morphing protein hydrogels based on protein unfolding and folding," Nature Communications, Nature, vol. 13(1), pages 1-8, December.
    7. Chujun Ni & Di Chen & Yu Yin & Xin Wen & Xiaolan Chen & Chen Yang & Guancong Chen & Zhuo Sun & Jihang Wen & Yurong Jiao & Chunyang Wang & Ning Wang & Xiangxing Kong & Shihong Deng & Youqing Shen & Rui, 2023. "Shape memory polymer with programmable recovery onset," Nature, Nature, vol. 622(7984), pages 748-753, October.
    8. Qifeng Mu & Kunpeng Cui & Zhi Jian Wang & Takahiro Matsuda & Wei Cui & Hinako Kato & Shotaro Namiki & Tomoko Yamazaki & Martin Frauenlob & Takayuki Nonoyama & Masumi Tsuda & Shinya Tanaka & Tasuku Nak, 2022. "Force-triggered rapid microstructure growth on hydrogel surface for on-demand functions," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    9. Amirali Nojoomi & Junha Jeon & Kyungsuk Yum, 2021. "2D material programming for 3D shaping," Nature Communications, Nature, vol. 12(1), pages 1-8, December.
    10. Lidong Zhang & Haoran Liang & Jolly Jacob & Panče Naumov, 2015. "Erratum: Photogated humidity-driven motility," Nature Communications, Nature, vol. 6(1), pages 1-1, November.
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