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September 10, 2025International Journal of Extreme Manufacturing13 citationsOpen Access

Bio-Inspired Magnetic Soft Robots with Omnidirectional Climbing for Multifunctional Biomedical Applications

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RXRuomeng XuXWXianli WangYCYuanhe Chen

Key Points

  • The bio-inspired magnetic soft robots can overcome mobility barriers in the gastrointestinal tract, improving drug delivery effectiveness.
  • In vitro animal experiments validated the functionality of the bio-inspired magnetic soft robots, supporting their use in clinical settings.
  • The design allows for omnidirectional climbing using a six-degree-of-freedom robotic arm, enhancing maneuverability in complex organ structures.
  • By providing real-time navigation assistance through an endoscope, the robots minimize patient discomfort during procedures.

Abstract

Abstract In recent years, the rising incidence of gastrointestinal (GI) cancer has triggered an urgent need for effective early intervention strategies. Traditional endoscopic techniques often cause patient discomfort, and it is difficult to navigate deep regions of complex organ structures. This work proposes a kind of bio-inspired magnetic soft robots (BMSRs) to address these challenges. The design of the BMSRs is inspired by the rolling motion of the golden wheel spider. Two six-degree-of-freedom (6-DOF) robotic arms are used, where one arm is responsible for real-time manipulation of the BMSRs and the other is dedicated to monitoring their status. Under the actuation of an external rotating magnetic field, the BMSRs can flexibly climb on inclined surfaces at any angle, involving inverted surface. Through the powerful output force, the BMSRs can overcome the mobility barrier induced by different human organs, including mucus, folds, and height differences of up to 8 cm. Such an exceptional mobility enables the BMSRs to deliver drugs in the targeted complex GI environment. Moreover, in combination with an endoscope, it provides real-time visual feedback for precise navigation. In vitro animal experiments validate the feasibility of BMSRs, paving a way for their usage in minimally invasive GI treatment. This work advances the potential applications of magnetic soft robots in the biomedical field.

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Cite This Study

Xu et al. (2025) studied this question.

synapsesocial.com/papers/68c182399b7b07f3a060e5e7https://doi.org/10.1088/2631-7990/ae0214
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