Bio-inspired functional recursion enables multi-mode locomotion in a 140-mg morphing microrobot

Insects traverse diverse environments by reusing body structures and appendages through adaptable mechanics, an ability that remains a grand challenge for insect-scale robotics under strict mass constraints. Here we present an insect‑scale robot that integrates aerial takeoff and open-loop attitude modulation, terrestrial crawling, water-surface gliding, and electrowetting-triggered controlled immersion within a 140-mg platform, with these capabilities demonstrated as representative open-loop functional tests rather than a single continuous autonomous mission. Moving beyond actuator‑heavy designs, the robot encodes structural intelligence in a single multifunctional morphing frame driven by shape-memory alloy artificial muscles. This morphing body reconfigures to take on distinct roles across diverse environments: it acts as a steering transmission for asymmetric flapping-wing kinematics, a linear oscillator for terrestrial crawling through anisotropic friction, and a deformation actuator that tunes kirigami-inspired footpad gaps for interfacial support and immersion control. Footpad modulation enables active electrowetting, rupturing the water surface at 225 V to achieve controlled immersion and increasing load capacity to 1.7 × body weight. By integrating soft actuation, structural mechanics, and interfacial control into one reconfigurable structure, this work establishes a paradigm of functional recursion, where a minimal physical platform repeatedly reassigns form and function, addressing the fundamental trade-off between operational diversity and extreme miniaturization.

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Publication Details

Journal
Microsystems & Nanoengineering
Published
2026-09-21
DOI
https://doi.org/10.1038/s41378-026-01449-0
Primary Topic
Micro and Nano Robotics
Type
article
Field-Weighted Citation Impact
0.00

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article

Bio-inspired functional recursion enables multi-mode locomotion in a 140-mg morphing microrobot

Yi Guan, Zhibo Geng, Zhonglai Wang, Pengpeng Zhi et al.
Microsystems & Nanoengineering
Micro and Nano Robotics
article

Bio-inspired functional recursion enables multi-mode locomotion in a 140-mg morphing microrobot

Yi Guan, Zhibo Geng, Zhonglai Wang, Pengpeng Zhi, Shan Lu, Junfu Zhang, Yunfei Wang, Yaoming Fu, Zequn Wang, Wei Zhang, Yichuan Wu
article en

Abstract

Insects traverse diverse environments by reusing body structures and appendages through adaptable mechanics, an ability that remains a grand challenge for insect-scale robotics under strict mass constraints. Here we present an insect‑scale robot that integrates aerial takeoff and open-loop attitude modulation, terrestrial crawling, water-surface gliding, and electrowetting-triggered controlled immersion within a 140-mg platform, with these capabilities demonstrated as representative open-loop functional tests rather than a single continuous autonomous mission. Moving beyond actuator‑heavy designs, the robot encodes structural intelligence in a single multifunctional morphing frame driven by shape-memory alloy artificial muscles. This morphing body reconfigures to take on distinct roles across diverse environments: it acts as a steering transmission for asymmetric flapping-wing kinematics, a linear oscillator for terrestrial crawling through anisotropic friction, and a deformation actuator that tunes kirigami-inspired footpad gaps for interfacial support and immersion control. Footpad modulation enables active electrowetting, rupturing the water surface at 225 V to achieve controlled immersion and increasing load capacity to 1.7 × body weight. By integrating soft actuation, structural mechanics, and interfacial control into one reconfigurable structure, this work establishes a paradigm of functional recursion, where a minimal physical platform repeatedly reassigns form and function, addressing the fundamental trade-off between operational diversity and extreme miniaturization.

Microsystems & NanoengineeringVol. 12(1)
Xihua University (CN), University of Electronic Science and Technology of China (CN), Huzhou Normal University (CN), Civil Aviation Flight University of China (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 17%
Micro and Nano Robotics
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