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Updated: Sep 26, 2026

Manufacturing, Control, and Performance Evaluation of a Gecko-Inspired Soft Robot
Published on: June 10, 2020
Tortoise-Inspired Magnetically Actuated Soft Robot Enabled by Segmented Legs with Programmable Bending
Nanhao Zhou1, Han Huang1,2
1School of Integrated Circuits, Nanjing University of Information Science and Technology, Nanjing 210055, China.
Abstract:
Inspired by the natural curvature and jointed configuration of tortoise limbs, this paper presents a magnetically controlled soft robot based on a "programmable intrinsic curvature" design paradigm. When corrugated flexural notches are introduced into a single-material elastomeric leg, localized stress concentration enables each leg to acquire a predefined curved shape during fabrication. Combined with corrugated-straw-based sacrificial molding and magnetic-field-assisted curing, the strategy allows independent tuning of bending angle and leg length. Four legs are radially integrated onto a soft torso. Experimental results show that the stepping-pushing asymmetry of a single leg is governed by the predefined curvature, with the snap-through state corresponding to the equilibrium between magnetic attraction and paramagnetic deflection. The robot achieves speeds of 1.1 mm/s on dry ground, 9.5 mm/s in semi-submerged water, and 56 mm/s in fully submerged water (at 0.8 Hz, 340 mT), a ~50-fold increase in swimming speed compared with its terrestrial locomotion speed. It also demonstrates sharp turning, payload transport, rough surface traversal, and self-righting. This work elevates intrinsic curvature from passive geometry to an active design variable for soft robots in complex multi-environment scenarios.
