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Actuation-enhanced multifunctional sensing and information recognition by magnetic artificial cilia arrays

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SCHOOL OF MEDICINE
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Han, Jie
Dong, Xiaoguan
Yin, Zhen
Zhang, Shuaizhong
Li, Meng
Zheng, Zhiqiang
Ugurlu, Musab Cagri
Jiang, Weitao
Liu, Hongzhong

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Artificial cilia integrating both actuation and sensing functions allow simultaneously sensing environmental properties and manipulating fluids in situ, which are promising for environment monitoring and fluidic applications. However, existing artificial cilia have limited ability to sense environmental cues in fluid flows that have versatile information encoded. This limits their potential to work in complex and dynamic fluid-filled environments. Here, we propose a generic actuation- enhanced sensing mechanism to sense complex environmental cues through the active interaction between artificial cilia and the surrounding fluidic environments. The proposed mechanism is based on fluid-cilia interaction by integrating soft robotic artificial cilia with flexible sen-sors. With a machine learning-based approach, complex environmental cues such as liquid viscosity, environment boundaries, and distributed fluid flows of a wide range of velocities can be sensed, which is beyond the capability of existing artificial cilia. As a proof of concept, we implement this mechanism on magnetically actuated cilia with integrated laser- induced graphene-based sensors and demonstrate sensing fluid apparent viscosity, environment boundaries, and fluid flow speed with a reconfigur-able sensitivity and range. The same principle could be potentially applied to other soft robotic systems integrating other actuation and sensing modalities for diverse environmental and fluidic applications.

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National Academy of Sciences

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Multidisciplinary sciences

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Proceedings of the National Academy of Sciences of the United States of America

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10.1073/pnas.2308301120

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