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August 19, 2025Nano-Micro Letters14 citationsOpen Access

Octopus-Inspired Self-Adaptive Hydrogel Gripper Capable of Manipulating Ultra-Soft Objects

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YWYixian WangDLDesheng LiuDHDanli Hu

Key Points

  • The hydrogel soft gripper reliably adapts its grip to delicately manipulate fragile objects underwater.
  • Using hydraulic actuation and multiple supramolecular hydrogels, the gripper can switch between adhesion modes effectively.
  • The design includes a tunable curvature membrane and negative pressure cavity, enabling versatile underwater tasks.
  • This advancement in soft robotics may enhance the efficiency of underwater exploration and the handling of sensitive materials.

Abstract

Octopuses, due to their flexible arms, marvelous adaptability, and powerful suckers, are able to effortlessly grasp and disengage various objects in the marine surrounding without causing devastation. However, manipulating delicate objects such as soft and fragile foods underwater require gentle contact and stable adhesion, which poses a serious challenge to now available soft grippers. Inspired by the sucker infundibulum structure and flexible tentacles of octopus, herein we developed a hydraulically actuated hydrogel soft gripper with adaptive maneuverability by coupling multiple hydrogen bond-mediated supramolecular hydrogels and vat polymerization three-dimensional printing, in which hydrogel bionic sucker is composed of a tunable curvature membrane, a negative pressure cavity, and a pneumatic chamber. The design of the sucker structure with the alterable curvature membrane is conducive to realize the reliable and gentle switchable adhesion of the hydrogel soft gripper. As a proof-of-concept, the adaptive hydrogel soft gripper is capable of implement diversified underwater tasks, including gingerly grasping fragile foods like egg yolks and tofu, as well as underwater robots and vehicles that station-keeping and crawling based on switchable adhesion. This study therefore provides a transformative strategy for the design of novel soft grippers that will render promising utilities for underwater exploration soft robotics.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68af4546ad7bf08b1ead2edfhttps://doi.org/10.1007/s40820-025-01880-4
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