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  4. Computational analysis of particle trajectories for enhanced separation efficiency in deterministic lateral displacement arrays
 
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2025
Journal Article
Title

Computational analysis of particle trajectories for enhanced separation efficiency in deterministic lateral displacement arrays

Abstract
Deterministic lateral displacement (DLD), a passive microfluidic particle separation technique based on size-dependent behavior, has been widely used in biomedical and analytical applications. When modifying post geometries can influence particle separation performance, such approaches often face challenges due to unpredictable particle dynamics and fabrication constraints. In this study, we explore additional parameters such as inlet configurations and flow-rate ratios to enhance particle sorting efficiency in DLD arrays without complex structural modifications. Through numerical flow simulations across varying Reynolds numbers (Re), we identify stable flow regimes and demonstrate that a Re of 23.28 achieves particle separation. Particle trajectory was systematically analyzed depending on the inlet spacing and flow-rate ratios to optimize sorting performance. The results show peak separation efficiency at a flow-rate ratio of 1:4 with a 150 μm inlet distance under moderate-to-high Re condition of 23.28. This approach provides a practical and scalable alternative to complex structural modifications, enabling the development of high-throughput DLD arrays for advanced diagnostic and biosensing applications.
Author(s)
Kim, Young Min
Yonsei University
Belyaev, Dmitry
Fraunhofer-Institut für Keramische Technologien und Systeme IKTS  
Beshchasna, Natalia  
Fraunhofer-Institut für Keramische Technologien und Systeme IKTS  
Yeo, Jong Souk
Yonsei University
Journal
AIP Advances  
Open Access
File(s)
Download (9 MB)
Rights
CC BY-NC 4.0: Creative Commons Attribution-NonCommercial
DOI
10.1063/5.0287849
10.24406/publica-6995
Additional link
Full text
Language
English
Fraunhofer-Institut für Keramische Technologien und Systeme IKTS  
Keyword(s)
  • Polymers

  • Finite-element analysis

  • Computational fluid dynamics

  • Incompressible flow

  • Flow simulations

  • Fluid flows

  • Microfluidics

  • Medical diagnosis

  • Blood cells

  • Cell sorting

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