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受海星启发的管足,用于临时和可切换的水下粘附与运输。

Starfish-inspired tube feet for temporary and switchable underwater adhesion and transportation.

作者信息

Lee Hyemin, Ryu Yerin, Oh Yejin, Kim Chorong, Lee Yoonjin, Choi Hyewon, Kim Jaekyoung, Kim Ji Hoon, Kang Jiwan, Park Keun, Turner Kevin T, Yang Shu, Yoon Hyunsik

机构信息

Department of Chemical and Biomolecular Engineering, Seoul National University of Science and Technology, Seoul 01811, Korea.

Department of Energy and Chemical Engineering, Seoul National University of Science and Technology, Seoul 01811, Korea.

出版信息

Sci Adv. 2025 Jul 25;11(30):eadx3539. doi: 10.1126/sciadv.adx3539. Epub 2025 Jul 23.

Abstract

Temporary and reversible underwater adhesion is important for a number of robotic applications, including picking up objects, facilitating locomotion in confined environments, and attaching to surfaces during periods of observation. Here, we present a starfish-inspired tube foot composed of a soft hydrogel mouth and a rigid stem, fabricated by integrating two serially bonded cylindrical components with distinct mechanical properties. Upon swelling, the initially straight hydrogel cylinder undergoes a selective shape transformation into a soft, cupped pad that deforms to stretch and spread upon contact, enabling effective adhesion to target surfaces. During detachment, a vacuum is formed within the tube, leading to strong underwater adhesion. The artificial tube feet show high adhesion hysteresis, autonomous release by external stimuli, and immediate detachment by pneumatic actuation with integrated system. The temporary underwater adhesive inspired by the tube feet of starfish enables functionality in underwater robotics and is demonstrated through underwater manipulation of rocks.

摘要

临时且可逆的水下附着力对于许多机器人应用都很重要,包括拾取物体、在受限环境中促进移动以及在观察期间附着于表面。在此,我们展示了一种受海星启发的管足,它由一个柔软的水凝胶口和一个刚性茎组成,通过将两个具有不同机械性能的串联圆柱形部件集成而制造。膨胀时,最初笔直的水凝胶圆柱体经历选择性形状转变,变成一个柔软的杯状垫,在接触时会变形以伸展和展开,从而能够有效地附着在目标表面上。在分离过程中,管内形成真空,导致强大的水下附着力。这种人造管足表现出高附着力滞后性、通过外部刺激自动释放以及通过集成系统的气动驱动立即分离。受海星管足启发的临时水下粘合剂使水下机器人具备功能性,并通过对岩石的水下操作得到了证明。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1eb6/12285717/f2819f985bdb/sciadv.adx3539-f1.jpg

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