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Vacuum fluidic circuits with logic control and on-site oscillation tunability for electronics-free soft robots
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  • Published: 27 April 2026

Vacuum fluidic circuits with logic control and on-site oscillation tunability for electronics-free soft robots

  • Tao Jin1 na1,
  • Zhenzhou Wang1 na1,
  • Sicheng Yi1,
  • Yangqiao Lin1,
  • Long Li1,
  • Yingzhong Tian1,
  • Peng Qi2 &
  • …
  • Raye Chen-hua Yeow3 

npj Flexible Electronics (2026) Cite this article

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  • Mathematics and computing
  • Physics

Abstract

Fluidic circuits advance the soft pneumatic robot beyond the dependence on bulky and rigid control components. However, many existing fluidic logic architectures, which were primarily developed for positive pressure operation, exhibit limited adaptability to vacuum actuation, particularly in achieving on-site period tunability in fluidic oscillators. This paper presents vacuum fluidic circuits that leverage origami-inspired soft valves to achieve logic control and tunable oscillation for soft robotic manipulation in dynamic scenarios. The soft valve achieves airflow control via tube kinking and serves as a fundamental NOT logic gate. This design contributes to more complicated logic operations and fluidic oscillators via strategic valve arrangements. Based on the theoretical analysis, the flow regulator is introduced into fluidic circuits to enable the tunable oscillating period from 2.4 s to 15.6 s. Combined with logic input and programmable actuation, diversified robotic operations, including autonomous actuation, object sieving with multi-level periods, and omnidirectional locomotion control, demonstrates the control flexibility for versatile applications. This on-site tunability of fluidic circuit enables vacuum-driven soft robots to perform dexterous and electronics-free operations with scalability and programmability, showcasing the possibility toward mechanical intelligence.

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Acknowledgements

This work was supported in part by the National Key Research and Development Program of China (grant no. 2023YFB4705200), in part by Singapore National Robotics Programme - Robotics Enabling Capability Technology (grant no. W2025D0243), in part by the National Natural Science Foundation of China (grant nos. 62303291, 62473244, 62273222, and 12202256), in part by the Foundation of Science and Technology Commission of Shanghai Municipality (grant nos. 24511103800, and 24TS1402300), and in part by Shanghai Pujiang Program (grant no. 24PJD031).

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Author notes
  1. These authors contributed equally: Tao Jin, Zhenzhou Wang.

Authors and Affiliations

  1. Shanghai Key Laboratory of Intelligent Manufacturing and Robotics, School of Mechatronic Engineering and Automation, Shanghai University, Shanghai, China

    Tao Jin, Zhenzhou Wang, Sicheng Yi, Yangqiao Lin, Long Li & Yingzhong Tian

  2. Department of Control Science and Engineering, College of Electronics and Information Engineering, Tongji University, Shanghai, China

    Peng Qi

  3. Department of Biomedical Engineering, College of Design and Engineering, National University of Singapore, Singapore, Singapore

    Raye Chen-hua Yeow

Authors
  1. Tao Jin
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  2. Zhenzhou Wang
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Corresponding authors

Correspondence to Peng Qi or Raye Chen-hua Yeow.

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Cite this article

Jin, T., Wang, Z., Yi, S. et al. Vacuum fluidic circuits with logic control and on-site oscillation tunability for electronics-free soft robots. npj Flex Electron (2026). https://doi.org/10.1038/s41528-026-00581-1

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  • Received: 09 December 2025

  • Accepted: 13 April 2026

  • Published: 27 April 2026

  • DOI: https://doi.org/10.1038/s41528-026-00581-1

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