Unknown

Dataset Information

0

Bioinspired hydrophobic pseudo-hydrogel for programmable shape-morphing.


ABSTRACT: Inspired by counterintuitive water "swelling" ability of the hydrophobic moss of the genus Sphagnum (Peat moss), we prepared a hydrophobic pseudo-hydrogel (HPH), composed of a pure hydrophobic silicone elastomer with a tailored porous structure. In contrast to conventional hydrogels, HPH achieves absorption-induced volume expansion through surface tension induced elastocapillarity, presenting an unexpected absorption-induced volume expansion capability in hydrophobic matrices. We adopt a theoretical framework elucidating the interplay of surface tension induced elastocapillarity, providing insights into the absorption-induced volume expansion behavior. By systematically programming the pore structure, we demonstrate tunable, anisotropic, and programmable absorption-induced expansion. This leads to dedicated self-shaping transformations. Incorporating magnetic particles, we engineer HPH-based soft robots capable of swimming, rolling, and walking. This study demonstrates a unusual approach to achieve water-responsive behavior in hydrophobic materials, expanding the possibilities for programmable shape-morphing in soft materials and soft robotic applications.

SUBMITTER: Wang Z 

PROVIDER: S-EPMC11746949 | biostudies-literature | 2025 Jan

REPOSITORIES: biostudies-literature

altmetric image

Publications

Bioinspired hydrophobic pseudo-hydrogel for programmable shape-morphing.

Wang Zhigang Z   Hu Haotian H   Chai Zefan Z   Hu Yuhang Y   Wang Siyuan S   Zhang Cheng C   Yan Chunjie C   Wang Jun J   Coll Wesley W   Huang Tony Jun TJ   Xu Xianchen X   Deng Heng H  

Nature communications 20250121 1


Inspired by counterintuitive water "swelling" ability of the hydrophobic moss of the genus Sphagnum (Peat moss), we prepared a hydrophobic pseudo-hydrogel (HPH), composed of a pure hydrophobic silicone elastomer with a tailored porous structure. In contrast to conventional hydrogels, HPH achieves absorption-induced volume expansion through surface tension induced elastocapillarity, presenting an unexpected absorption-induced volume expansion capability in hydrophobic matrices. We adopt a theoret  ...[more]

Similar Datasets

| S-EPMC9376742 | biostudies-literature
| S-EPMC8792031 | biostudies-literature
| S-EPMC12657836 | biostudies-literature
| S-EPMC8214511 | biostudies-literature
| S-EPMC4669499 | biostudies-literature
| S-EPMC7673813 | biostudies-literature
| S-EPMC6968942 | biostudies-literature
| S-EPMC4049491 | biostudies-literature