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Multifunctional robotic electrofluid for soft fluidic actuation

Wei Tang, Pingan Zhu, Yu Hu, Xinyu Guo, Yonghao Wang, Kecheng Qin, Yiding Zhong, Qincheng Sheng, Huxiu Xu, Zhaoyang Li, Huayong Yang, Jun Zou

Year
2025
Citations
3

Abstract

Like the vital role that multifunctional biological fluids play in living organisms, leveraging fluid multifunctionality offers a promising approach to enhance system capabilities without overcomplicating the hardware. However, creating a multifunctional fluid for soft fluidic systems remains a persistent challenge. Here, we report a multifunctional electrofluid that integrates actuation, sensing, self-healing, damage detection, and triboelectricity powering for the various function requirements of soft fluidic systems. We demonstrate that actuation, sensing, and damage detection can be achieved by activating electrons in the working fluid, and the system enables underwater self-healing through the incorporation of water-reactive self-healing agents into the working fluid. In addition, we achieve the fluid flow by transporting the electrons gathered by the triboelectric nanogenerator into the fluid, thereby making the system become a triboelectricity-powered machine. The fluid module developed based on electrofluids is self-contained and plug-and-play, providing good convenience for rapid construction of soft fluidic systems. We validate the effectiveness of the electronic fluids through soft robotic fish, soft octobot, and wearable devices, demonstrating that the proposed fluid enables multiple functions of the system without added weight or volume. As such, the proposed electrofluid provides a promising platform to achieve high integration and lightweight of multifunctional soft fluidic actuation by expanding the functionalities of the fluid itself. • A multifunctional robotic electrofluid integrated actuation, sensing, self-healing, damage detection, and triboelectricity powering. • Rapid self-healing of underwater soft robots was realized by robotic electrofluid. • An integrated 3D printing method for fabricating soft fluidic pumps was developed. • A modular design strategy for quickly building soft fluidic systems was proposed.

Keywords

Soft roboticsFluidicsMaterials scienceMechanical engineeringActuatorComputer scienceNanotechnologyEngineeringAerospace engineeringArtificial intelligence

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