Behavior of rigid and deformable particles in deterministic lateral displacement devices with different post shapes

被引:84
作者
Zhang, Zunmin [1 ]
Henry, Ewan [1 ]
Gompper, Gerhard [1 ]
Fedosov, Dmitry A. [1 ]
机构
[1] Forschungszentrum Julich, Inst Adv Simulat, D-52425 Julich, Germany
关键词
RED-BLOOD-CELLS; FLOW; SEPARATION; DYNAMICS; VESICLES; ARRAYS; MECHANICS; MODEL; SIZE;
D O I
10.1063/1.4937171
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Deterministic lateral displacement (DLD) devices have great potential for the separation and sorting of various suspended particles based on their size, shape, deformability, and other intrinsic properties. Currently, the basic idea for the separation mechanism is that the structure and geometry of DLDs uniquely determine the flow field, which in turn defines a critical particle size and the particle lateral displacement within a device. We employ numerical simulations using coarse-grained mesoscopic methods and two-dimensional models to elucidate the dynamics of both rigid spherical particles and deformable red blood cells (RBCs) in different DLD geometries. Several shapes of pillars, including circular, diamond, square, and triangular structures, and a few particle sizes are considered. The simulation results show that a critical particle size can be well defined for rigid spherical particles and depends on the details of the DLD structure and the corresponding flow field within the device. However, non-isotropic and deformable particles such as RBCs exhibit much more complex dynamics within a DLD device, which cannot properly be described by a single parameter such as the critical size. The dynamics and deformation of soft particles within a DLD device become also important, indicating that not only size sorting, but additional sorting targets (e.g., shape, deformability, internal viscosity) are possible. (C) 2015 AIP Publishing LLC.
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页数:11
相关论文
共 46 条
[1]   Tank treading and unbinding of deformable vesicles in shear flow: Determination of the lift force [J].
Abkarian, M ;
Lartigue, C ;
Viallat, A .
PHYSICAL REVIEW LETTERS, 2002, 88 (06) :4
[2]   New design for the separation of microorganisms using microfluidic deterministic lateral displacement [J].
Al-Fandi, Mohamed ;
Al-Rousan, Mohammad ;
Jaradat, Mohammad A. K. ;
Al-Ebbini, Lina .
ROBOTICS AND COMPUTER-INTEGRATED MANUFACTURING, 2011, 27 (02) :237-244
[3]  
Allen P., 1991, Computer simulation of liquids
[4]  
[Anonymous], THESIS PRINCETON U U
[5]   Poiseuille flow to measure the viscosity of particle model fluids [J].
Backer, JA ;
Lowe, CP ;
Hoefsloot, HCJ ;
Iedema, PD .
JOURNAL OF CHEMICAL PHYSICS, 2005, 122 (15)
[6]   Sorting cells by size, shape and deformability [J].
Beech, Jason P. ;
Holm, Stefan H. ;
Adolfsson, Karl ;
Tegenfeldt, Jonas O. .
LAB ON A CHIP, 2012, 12 (06) :1048-1051
[7]   Lift force and dynamical unbinding of adhering vesicles under shear flow [J].
Cantat, I ;
Misbah, C .
PHYSICAL REVIEW LETTERS, 1999, 83 (04) :880-883
[8]   Deterministic hydrodynamics: Taking blood apart [J].
Davis, John A. ;
Inglis, David W. ;
Morton, Keith J. ;
Lawrence, David A. ;
Huang, Lotien R. ;
Chou, Stephen Y. ;
Sturm, James C. ;
Austin, Robert H. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (40) :14779-14784
[9]   STATISTICAL-MECHANICS OF DISSIPATIVE PARTICLE DYNAMICS [J].
ESPANOL, P ;
WARREN, P .
EUROPHYSICS LETTERS, 1995, 30 (04) :191-196
[10]   Simulating flow of DNA suspension using dissipative particle dynamics [J].
Fan, Xijun ;
Phan-Thien, Nhan ;
Chen, Shuo ;
Wu, Xuhong ;
Ng, Teng Yong .
PHYSICS OF FLUIDS, 2006, 18 (06)