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Research Article | Open Access

Acoustic Rising Microbubbles for Efficient Liquid Operations

Chenhao Bai1,Zhuo Chen1,Yunsheng Li1Yan Chen1Qing Shi1Qiang Huang1,2Toshio Fukuda3Tatsuo Arai1,4Xiaoming Liu1,5( )
School of Mechatronics Engineering and Key Laboratory of Biomimetic Robots and Systems, Ministry of Education, Beijing Institute of Technology, Beijing 100081, China
Thrust of Robotics and Autonomous Systems, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou 511453, China
Institute of Innovation for Future Society, Nagoya University, Nagoya 4648601, Japan
Center for Neuroscience and Biomedical Engineering, The University of Electro-Communications, Tokyo 1828585, Japan
School of Medical Engineering, Beijing Institute of Technology, Zhuhai 519088, China

†These authors contributed equally to this work.

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Abstract

Efficient liquid manipulation is crucial in chemical engineering, biological research, clinical applications, and materials science. Bubbles, such as boiling, rising, and cavitating bubbles, have been widely employed to enhance mixing and mass transfer through their unique hydrodynamic behaviors. Yet, conventional bubble-based approaches often face limited scalability and poor performance in high-viscosity environments. Here, we introduce a strategy that employs low-energy acoustic excitation of rising microbubbles to achieve scalable and efficient mass transfer across macroscale and microscale domains. By coupling buoyancy-driven convection with localized acoustic microstreaming, acoustic rising microbubbles simultaneously extend the operational workspace and intensify local mass transfer. Particle image velocimetry and computational fluid dynamics analyses characterize the distinct contributions of buoyancy-induced flows, acoustically induced microstreaming, and their superimposed effects. Various chemical and biomedical applications, including efficient high-viscosity mixing, accelerated chemical material synthesis, altered cell membrane permeability, promoted cell lysis, and thrombus clearance, demonstrate the great potential of the proposed acoustic rising bubbles for efficient mass transfer in laboratory and industrial liquid manipulations.

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Cyborg and Bionic Systems
Article number: 0449

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Cite this article:
Bai C, Chen Z, Li Y, et al. Acoustic Rising Microbubbles for Efficient Liquid Operations. Cyborg and Bionic Systems, 2026, 7: 0449. https://doi.org/10.34133/cbsystems.0449

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Received: 15 October 2025
Revised: 19 November 2025
Accepted: 22 December 2025
Published: 09 March 2026
© 2026 Chenhao Bai et al. Exclusive licensee Beijing Institute of Technology Press. No claim to original U.S. Government Works.

Distributed under a Creative Commons Attribution License (CC BY 4.0).