A Microfluidic System for Particle Enrichment by Integrating an Acoustic Field With Oscillatory Flow

The enrichment of biological particles has important applications in biomedical detection, environmental monitoring, and chemical analysis. Although various external fields applied individually or in combination have been widely employed to achieve particle enrichment, balancing high enrichment efficiency with the preservation of biological activity remained a critical bottleneck. In this study, a novel microfluidic particle enrichment strategy was developed by integrating an acoustic field with oscillatory flow. An integrated microfluidic system was constructed, consisting of an acoustic actuation module, an oscillatory flow generation module, and a real-time observation region on a single chip, coupled with a miniaturized external programmable power supply. Comprehensive experiments were conducted to explore the influences of acoustic intensity and frequency, as well as key oscillatory flow parameters, on particle enrichment behavior. The results demonstrated that increasing the acoustic driving voltage enhanced the enrichment effect, while frequency tuning allowed control over the enrichment position. For oscillatory flow, enrichment efficiency exhibited a positive correlation with the driving frequency, whereas the voltage amplitude showed no significant influence. These findings deepened the understanding of particle enrichment mechanisms under coupled acoustofluidic fields and offered important theoretical guidance for the development of prototypes with relatively low hardware costs, showing potential for further miniaturization and portable operation.

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Publication Details

Journal
Electrophoresis
Published
2026-09-12
DOI
https://doi.org/10.1002/elps.70158
Primary Topic
Microfluidic and Bio-sensing Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

A Microfluidic System for Particle Enrichment by Integrating an Acoustic Field With Oscillatory Flow

Jing‐Tong Na, Chun‐Dong Xue, Kai‐Rong Qin, Shanshan Li et al.
Electrophoresis
Microfluidic and Bio-sensing Technologies
article

A Microfluidic System for Particle Enrichment by Integrating an Acoustic Field With Oscillatory Flow

Jing‐Tong Na, Chun‐Dong Xue, Kai‐Rong Qin, Shanshan Li, Yong‐Jiang Li, Yan-Ran Wang, Jun Yu, Shu‐Xin Liu, Jia‐Ming Zhao
article en

Abstract

The enrichment of biological particles has important applications in biomedical detection, environmental monitoring, and chemical analysis. Although various external fields applied individually or in combination have been widely employed to achieve particle enrichment, balancing high enrichment efficiency with the preservation of biological activity remained a critical bottleneck. In this study, a novel microfluidic particle enrichment strategy was developed by integrating an acoustic field with oscillatory flow. An integrated microfluidic system was constructed, consisting of an acoustic actuation module, an oscillatory flow generation module, and a real-time observation region on a single chip, coupled with a miniaturized external programmable power supply. Comprehensive experiments were conducted to explore the influences of acoustic intensity and frequency, as well as key oscillatory flow parameters, on particle enrichment behavior. The results demonstrated that increasing the acoustic driving voltage enhanced the enrichment effect, while frequency tuning allowed control over the enrichment position. For oscillatory flow, enrichment efficiency exhibited a positive correlation with the driving frequency, whereas the voltage amplitude showed no significant influence. These findings deepened the understanding of particle enrichment mechanisms under coupled acoustofluidic fields and offered important theoretical guidance for the development of prototypes with relatively low hardware costs, showing potential for further miniaturization and portable operation.

Electrophoresis
Dalian University of Technology (CN), Dalian University (CN), Dalian Municipal Central Hospital (CN), Dalian Jiaotong University (CN)
Fundamental Research Funds for the Central Universities
Life in Land
Openalex Percentile: Top 20%
Microfluidic and Bio-sensing Technologies
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