Characterization of C-PDMS electrodes for electrokinetic applications in microfluidic systems

被引:28
作者
Deman, A-L [1 ,2 ]
Brun, M. [1 ,2 ]
Quatresous, M. [2 ,3 ]
Chateaux, J-F [1 ,2 ]
Frenea-Robin, M. [4 ]
Haddour, N. [4 ]
Semet, V. [1 ,2 ]
Ferrigno, R. [1 ,2 ]
机构
[1] Univ Lyon, INL, CNRS, UMR5270, F-69003 Lyon, France
[2] Univ Lyon 1, F-69622 Villeurbanne, France
[3] Univ Lyon, LPMCN, CNRS, UMR5586, F-69003 Lyon, France
[4] Univ Lyon, Lab Ampere, CNRS, UMR5005,Ecole Cent Lyon, F-69134 Ecully, France
关键词
DEVICE;
D O I
10.1088/0960-1317/21/9/095013
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper reports on the integration of thick carbon-polydimethylsiloxane (C-PDMS) electrodes in microfluidic systems for electrokinetic operations. The C-PDMS material, obtained by mixing carbon nanopowder and PDMS, preserves PDMS processing properties such as O-2 plasma activation and soft-lithography patternability in thick or 3D electrodes. Conductivity in the order of 10 S m(-1) was reached for a carbon concentration of 25 wt%. To evaluate the adhesion between PDMS and C-PDMS, we prepared bi-material strips and carried out a manual pull test. The cohesion and robustness of C-PDMS were also evaluated by applying a large range of electric field conditions from dc to ac (300 kHz). No damage to the electrodes or release of carbon was noticed. The use of such a material for electrokinetic manipulation was validated on polystyrene particles and cells. Here, we demonstrate that C-PDMS seems to be a valuable technological solution for electrokinetic in microfluidic and particularly for biological applications such as cell electrofusion, lysis and trapping, which are favored by uniform lateral electric fields across the microchannel section.
引用
收藏
页数:8
相关论文
共 30 条
[1]   Transport properties of PMMA-carbon nanotubes composites [J].
Benoit, JM ;
Corraze, B ;
Lefrant, S ;
Blau, WJ ;
Bernier, P ;
Chauvet, O .
SYNTHETIC METALS, 2001, 121 (1-3) :1215-1216
[2]   Nanocomposite Carbon-PDMS Material for Chip-Based Electrochemical Detection [J].
Brun, Mathieu ;
Chateaux, Jean-Francois ;
Deman, Anne-Laure ;
Pittet, Patrick ;
Ferrigno, Rosaria .
ELECTROANALYSIS, 2011, 23 (02) :321-324
[3]   Electrokinetic mixing in microfluidic systems [J].
Chang, Chih-Chang ;
Yang, Ruey-Jen .
MICROFLUIDICS AND NANOFLUIDICS, 2007, 3 (05) :501-525
[4]   Photopatternable conductive PDMS materials for microfabrication [J].
Cong, Hailin ;
Pan, Tingrui .
ADVANCED FUNCTIONAL MATERIALS, 2008, 18 (13) :1912-1921
[5]  
Engel J, 2006, PROC IEEE MICR ELECT, P246
[6]   Polydimethylsiloxane-based conducting composites and their applications in microfluidic chip fabrication [J].
Gong, Xiuqing ;
Wen, Weijia .
BIOMICROFLUIDICS, 2009, 3 (01)
[7]  
Gupta RK., 2010, Polymer Nanocomposites Handbook
[8]   OBSERVATION AND SIMULATION OF ELECTROHYDRODYNAMIC INSTABILITIES IN AQUEOUS COLLOIDAL SUSPENSIONS [J].
HU, Y ;
GLASS, JL ;
GRIFFITH, AE ;
FRADEN, S .
JOURNAL OF CHEMICAL PHYSICS, 1994, 100 (06) :4674-4682
[9]   Microfluidic actuation using electrochemically generated bubbles [J].
Hua, SZ ;
Sachs, F ;
Yang, DX ;
Chopra, HD .
ANALYTICAL CHEMISTRY, 2002, 74 (24) :6392-6396
[10]   Conductive SU8 photoresist for microfabrication [J].
Jiguet, S ;
Bertsch, A ;
Hofmann, H ;
Renaud, P .
ADVANCED FUNCTIONAL MATERIALS, 2005, 15 (09) :1511-1516