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May 17, 2026Science Advances1 citationsOpen Access

Fish-diversity–inspired multiple soft millirobot system with morphology-encoded selective control

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ZXZhengyuan XinZZZhiqiang ZhengYHYaozhen Hou

Key Points

  • This research aims to explore how different morphologies in soft millirobots can be optimized for propulsion efficiency and selective control.
  • Developed morphology-encoded patterned magnetic millirobot (MPMR) with predefined AP ratios and body contours.
  • Emulated undulatory swimming patterns of various fish species in fluidic environments.
  • Assessed performance based on morphology-specific velocity profiles under uniform magnetic actuation.
  • Optimal AP ratio of approximately 1:1 maximized propulsion efficiency.
  • MPMRs exhibited morphology-specific responses with varying frequencies to magnetic actuation.
  • Achieved effective multitarget delivery under uniform magnetic fields in both in vitro and ex vivo settings.

Abstract

Marine ecosystems, particularly coral reef communities, reveal how morphological diversification in fish species facilitates specialized locomotion through evolutionary optimization of body-fin coordination and hydrodynamic adaptations. Inspired by these biomechanical principles, we developed a morphology-encoded patterned magnetic millirobot (MPMR), whose anterior-to-posterior (AP) length ratio and body contour are predefined during fabrication to yield distinct hydrodynamic responses under the same uniform magnetic actuation. These MPMRs, with various morphologies, successfully emulated the undulatory swimming patterns of different fish species in a fluidic environment. Morphological differentiation in MPMRs has been shown to directly influence their motion performance, with an optimal AP ratio (approximately 1:1) and streamlined body contour maximizing propulsion efficiency. Furthermore, MPMRs with distinct morphologies display different frequency-dependent responses to magnetic actuation, leading to morphology-specific velocity profiles. By leveraging these morphology-encoded performance variations, we achieved effective selective control and multitarget delivery of multiple MPMRs under uniform magnetic fields, both in vitro and ex vivo (gastrointestinal tissue). These findings provide a foundation for future designs of flexible millirobots in similar environments and serve as a reference for advancing selective control methods for multiple millirobots in uniform magnetic fields.

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Cite This Study

Xin et al. (2026) studied this question.

synapsesocial.com/papers/6a095af37880e6d24efe0c60https://doi.org/10.1126/sciadv.aed6170
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