Deterministic Absolute Negative Mobility for Micro- and Submicrometer Particles Induced in a Microfluidic Device

被引:26
|
作者
Luo, Jinghui [1 ,2 ]
Muratore, Katherine A. [3 ]
Arriaga, Edgar A. [3 ,4 ]
Ros, Alexandra [1 ,2 ]
机构
[1] Arizona State Univ, Sch Mol Sci, Tempe, AZ 85287 USA
[2] Arizona State Univ, Biodesign Inst, Ctr Appl Struct Discovery, Tempe, AZ 85287 USA
[3] Univ Minnesota, Dept Biochem Mol Biol & Biophys, Minneapolis, MN 55455 USA
[4] Univ Minnesota, Dept Chem, 207 Pleasant St SE, Minneapolis, MN 55455 USA
基金
美国国家卫生研究院;
关键词
FREE-FLOW ELECTROPHORESIS; ADULT-RAT CARDIOMYOCYTES; SUBCELLULAR ORGANELLES; BROWNIAN-MOTION; MITOCHONDRIA; FRACTIONATION; PURIFICATION; DISEASES;
D O I
10.1021/acs.analchem.6b00837
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Efficient separations of particles with micron and submicron dimensions are extremely useful in preparation and analysis of materials for nanotechnological and biological applications. Here, we demonstrate a nonintuitive, yet efficient, separation mechanism for mu m and sub mu m colloidal particles and organelles, taking advantage of particle transport in a nonlinear post array in a microfluidic device under the periodic action of electrokinetic and dielectrophoretic forces. We reveal regimes in which deterministic particle migration opposite to the average applied force occurs for a larger particle, a typical signature of deterministic absolute negative mobility (dANM), whereas normal response is obtained for smaller particles. The coexistence of dANM and normal migration was characterized and optimized in numerical modeling and subsequently implemented in a microfluidic device demonstrating at least 2 orders of magnitude higher migration speeds as compared to previous ANM systems. We also induce dANM for mouse liver mitochondria and envision that the separation mechanisms described here provide size selectivity required in future separations of organelles, nanoparticles, and protein nanocrystals.
引用
收藏
页码:5920 / 5927
页数:8
相关论文
共 37 条
  • [11] Mobility reversal and absolute negative mobility induced by an internal degree of freedom
    Liu, Wenjun
    Wang, Lei
    PHYSICAL REVIEW E, 2025, 111 (01)
  • [12] Absolute negative mobility induced by thermal equilibrium fluctuations
    Machura, L.
    Kostur, M.
    Talkner, P.
    Luczka, J.
    Haenggi, P.
    PHYSICAL REVIEW LETTERS, 2007, 98 (04)
  • [13] Absolute negative mobility induced by fractional Gaussian noise
    Li, Jia-jian
    Xie, Hui-zhang
    Li, Teng-Chao
    Ai, Bao-quan
    PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2020, 560
  • [14] Absolute negative mobility induced by white Poissonian noise
    Spiechowicz, J.
    Luczka, J.
    Haenggi, P.
    JOURNAL OF STATISTICAL MECHANICS-THEORY AND EXPERIMENT, 2013,
  • [15] Absolute negative mobility induced by potential phase modulation
    Dandogbessi, Bruno S.
    Kenfack, Anatole
    PHYSICAL REVIEW E, 2015, 92 (06):
  • [16] Absolute negative mobility of the chain of Brownian particles in steady laminar flows
    Zhu, Wei-Jing
    He, Yu-Ling
    Ai, Bao-Quan
    JOURNAL OF STATISTICAL MECHANICS-THEORY AND EXPERIMENT, 2019, 2019 (10):
  • [17] Spontaneous rectification and absolute negative mobility of inertial Brownian particles induced by Gaussian potentials in steady laminar flows
    Wu, Jian-Chun
    An, Meng
    Ma, Wei-Gang
    SOFT MATTER, 2019, 15 (36) : 7187 - 7194
  • [18] Assembly and integration of heterogeneous micro- and nano-scale building blocks from a microfluidic device
    Ni, Songbo
    Isa, Lucio
    Spencer, Nicholas D.
    Wolf, Heiko
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248
  • [19] A MOBILITY MODEL FOR SUBMICROMETER MOSFET SIMULATIONS INCLUDING HOT-CARRIER-INDUCED DEVICE DEGRADATION
    HIROKI, A
    ODANAKA, S
    OHE, K
    ESAKI, H
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 1988, 35 (09) : 1487 - 1493
  • [20] Entrapment dynamics of micro-particles in a pulmonary capillary network (PCN) microfluidic device
    Belenkovich, Merav
    Sznitman, Josue
    Korin, Netanel
    BIORHEOLOGY, 2021, 58 (3-4) : 185 - 186