Rigorous buoyancy driven bubble mixing for centrifugal microfluidics

被引:30
作者
Burger, S. [1 ]
Schulz, M. [1 ]
von Stetten, F. [1 ,2 ]
Zengerle, R. [1 ,2 ,3 ]
Paust, N. [1 ,2 ]
机构
[1] Hahn Schickard, D-79110 Freiburg, Germany
[2] Univ Freiburg, IMTEK Dept Microsyst Engn, Lab MEMS Applicat, D-79110 Freiburg, Germany
[3] Univ Freiburg, BIOSS Ctr Biol Signalling Studies, D-79110 Freiburg, Germany
关键词
LAB;
D O I
10.1039/c5lc01280e
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
We present batch-mode mixing for centrifugal microfluidics operated at fixed rotational frequency. Gas is generated by the disk integrated decomposition of hydrogen peroxide (H2O2) to liquid water (H2O) gaseous oxygen (O-2) and inserted into a mixing chamber. There, bubbles are formed that ascent through the liquid in the artificial gravity field and lead to drag flow. Additionaly, strong buoyancy causes deformation and rupture of the gas bubbles and induces strong mixing flows in the liquids. Buoyancy driven bubble mixing is quantitatively compared to shake mode mixing, mixing by reciprocation and vortex mixing. To determine mixing efficiencies in a meaningful way, the different mixers are employed for mixing of a lysis reagent and human whole blood. Subsequently, DNA is extracted from the lysate and the amount of DNA recovered is taken as a measure for mixing efficiency. Relative to standard vortex mixing, DNA extraction based on buoyancy driven bubble mixing resulted in yields of 92 +/- 8% (100 s mixing time) and 100 +/- 8% (600 s) at 130g centrifugal acceleration. Shake mode mixing yields 96 +/- 11% and is thus equal to buoyancy driven bubble mixing. An advantage of buoyancy driven bubble mixing is that it can be operated at fixed rotational frequency, however. The additional costs of implementing buoyancy driven bubble mixing are low since both the activation liquid and the catalyst are very low cost and no external means are required in the processing device. Furthermore, buoyancy driven bubble mixing can easily be integrated in a monolithic manner and is compatible to scalable manufacturing technologies such as injection moulding or thermoforming. We consider buoyancy driven bubble mixing an excellent alternative to shake mode mixing, in particular if the processing device is not capable of providing fast changes of rotational frequency or if the low average rotational frequency is challenging for the other integrated fluidic operations.
引用
收藏
页码:261 / 268
页数:8
相关论文
共 23 条
  • [1] A fast microfluidic mixer based on acoustically driven sidewall-trapped microbubbles
    Ahmed, Daniel
    Mao, Xiaole
    Juluri, Bala Krishna
    Huang, Tony Jun
    [J]. MICROFLUIDICS AND NANOFLUIDICS, 2009, 7 (05) : 727 - 731
  • [2] A millisecond micromixer via single-bubble-based acoustic streaming
    Ahmed, Daniel
    Mao, Xiaole
    Shi, Jinjie
    Juluri, Bala Krishna
    Huang, Tony Jun
    [J]. LAB ON A CHIP, 2009, 9 (18) : 2738 - 2741
  • [3] Active pneumatic control of centrifugal microfluidic flows for lab-on-a-chip applications
    Clime, Liviu
    Brassard, Daniel
    Geissler, Matthias
    Veres, Teodor
    [J]. LAB ON A CHIP, 2015, 15 (11) : 2400 - 2411
  • [4] Mixing with bubbles: a practical technology for use with portable microfluidic devices
    Garstecki, P
    Fuerstman, MJ
    Fischbach, MA
    Sia, SK
    Whitesides, GM
    [J]. LAB ON A CHIP, 2006, 6 (02) : 207 - 212
  • [5] Batch-mode mixing on centrifugal microfluidic platforms
    Grumann, M
    Geipel, A
    Riegger, L
    Zengerle, R
    Ducrée, J
    [J]. LAB ON A CHIP, 2005, 5 (05) : 560 - 565
  • [6] Numerical simulation of bubble rising in viscous liquid
    Hua, Jinsong
    Lou, Jing
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 2007, 222 (02) : 769 - 795
  • [7] Pathways of oxidative damage
    Imlay, JA
    [J]. ANNUAL REVIEW OF MICROBIOLOGY, 2003, 57 : 395 - 418
  • [8] Bubble column reactors
    Kantarci, N
    Borak, F
    Ulgen, KO
    [J]. PROCESS BIOCHEMISTRY, 2005, 40 (07) : 2263 - 2283
  • [9] Kinahan D. J., 2015 28 IEEE INT C M, P504
  • [10] The LabTube - a novel microfluidic platform for assay automation in laboratory centrifuges
    Kloke, A.
    Fiebach, A. R.
    Zhang, S.
    Drechsel, L.
    Niekrawietz, S.
    Hoehl, M. M.
    Kneusel, R.
    Panthel, K.
    Steigert, J.
    von Stetten, F.
    Zengerle, R.
    Paust, N.
    [J]. LAB ON A CHIP, 2014, 14 (09) : 1527 - 1537