Microfluidic Vortex Enhancement for on-Chip Sample Preparation

被引:21
作者
Haller, Anna [1 ]
Spittler, Andreas [2 ,3 ]
Brandhoff, Lukas [4 ,5 ]
Zirath, Helene [6 ]
Puchberger-Enengl, Dietmar [1 ]
Keplinger, Franz [1 ]
Vellekoop, Michael J. [4 ,5 ]
机构
[1] Vienna Univ Technol, Inst Sensor & Actuator Syst, A-1040 Vienna, Austria
[2] Med Univ Vienna, Core Facil Flow Cytometry, A-1090 Vienna, Austria
[3] Med Univ Vienna, Dept Surg, Res Labs, Ctr Translat Res, A-1090 Vienna, Austria
[4] Univ Bremen, Inst Microsensors Actuators & Syst IMSAS, D-28359 Bremen, Germany
[5] Univ Bremen, MCB, D-28359 Bremen, Germany
[6] Austrian Inst Technol, Hlth & Environm Dept, A-1190 Vienna, Austria
关键词
BLOOD-PLASMA SEPARATION; CENTRIFUGE; EXTRACTION; DEVICES; CELLS; FLOW;
D O I
10.3390/mi6020239
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In the past decade a large amount of analysis techniques have been scaled down to the microfluidic level. However, in many cases the necessary sample preparation, such as separation, mixing and concentration, remains to be performed off-chip. This represents a major hurdle for the introduction of miniaturized sample-in/answer-out systems, preventing the exploitation of microfluidic's potential for small, rapid and accurate diagnostic products. New flow engineering methods are required to address this hitherto insufficiently studied aspect. One microfluidic tool that can be used to miniaturize and integrate sample preparation procedures are microvortices. They have been successfully applied as microcentrifuges, mixers, particle separators, to name but a few. In this work, we utilize a novel corner structure at a sudden channel expansion of a microfluidic chip to enhance the formation of a microvortex. For a maximum area of the microvortex, both chip geometry and corner structure were optimized with a computational fluid dynamic (CFD) model. Fluorescent particle trace measurements with the optimized design prove that the corner structure increases the size of the vortex. Furthermore, vortices are induced by the corner structure at low flow rates while no recirculation is observed without a corner structure. Finally, successful separation of plasma from human blood was accomplished, demonstrating a potential application for clinical sample preparation. The extracted plasma was characterized by a flow cytometer and compared to plasma obtained from a standard benchtop centrifuge and from chips without a corner structure.
引用
收藏
页码:239 / 251
页数:13
相关论文
共 48 条
  • [1] Inertial microfluidic physics
    Amini, Hamed
    Lee, Wonhee
    Di Carlo, Dino
    [J]. LAB ON A CHIP, 2014, 14 (15) : 2739 - 2761
  • [2] Microfluidic blood plasma separation via bulk electrohydrodynamic flows
    Arifin, Dian R.
    Yeo, Leslie Y.
    Friend, James R.
    [J]. BIOMICROFLUIDICS, 2007, 1 (01):
  • [3] Investigations of vortex formation in microbifurcations
    Balan, Catalin Mihai
    Broboana, Diana
    Balan, Corneliu
    [J]. MICROFLUIDICS AND NANOFLUIDICS, 2012, 13 (05) : 819 - 833
  • [4] Backward-facing step flows for various expansion ratios at low and moderate Reynolds numbers
    Biswas, G
    Breuer, M
    Durst, F
    [J]. JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2004, 126 (03): : 362 - 374
  • [5] Cellular manipulations in microvortices
    Chiu, Daniel T.
    [J]. ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2007, 387 (01) : 17 - 20
  • [6] Micro Total Analysis Systems: Fundamental Advances and Biological Applications
    Culbertson, Christopher T.
    Mickleburgh, Tom G.
    Stewart-James, Samantha A.
    Sellens, Kathleen A.
    Pressnall, Melissa
    [J]. ANALYTICAL CHEMISTRY, 2014, 86 (01) : 95 - 118
  • [7] Faivre M, 2006, BIORHEOLOGY, V43, P147
  • [8] Mapping low-Reynolds-number microcavity flows using microfluidic screening devices
    Fishler, Rami
    Mulligan, Molly K.
    Sznitman, Josue
    [J]. MICROFLUIDICS AND NANOFLUIDICS, 2013, 15 (04) : 491 - 500
  • [9] Towards an optimized blood plasma separation chip: Finite element analysis of a novel corner structure in a backward-facing step
    Haller, A.
    Buchegger, W.
    Vellekoop, M. J.
    [J]. EUROSENSORS XXV, 2011, 25
  • [10] Microfluidic Devices for Blood Fractionation
    Hou, Han Wei
    Bhagat, Ali Asgar S.
    Lee, Wong Cheng
    Huang, Sha
    Han, Jongyoon
    Lim, Chwee Teck
    [J]. MICROMACHINES, 2011, 2 (03) : 319 - 343