A Fluidic Interface with High Flow Uniformity for Reusable Large Area Resonant Biosensors

被引:5
作者
Azzopardi, Charles-Louis [1 ]
Lacour, Vivien [1 ,2 ]
Manceau, Jean-Francois [1 ]
Barthes, Magali [1 ]
Bonnet, Dimitri [1 ]
Chollet, Franck [1 ]
Leblois, Therese [1 ]
机构
[1] Univ Bourgogne Franche Comte, FEMTO ST Inst, CNRS, 15B Ave Montboucons, F-25030 Besancon, France
[2] Univ Sherbrooke, 3IT, Fac Engn, 3000 Blvd Univ, Sherbrooke, PQ J1K 0A5, Canada
关键词
microengineering; planar flow; fluidic interface; micro-machining; biosensor; SURFACE-PLASMON RESONANCE; SILICON; FABRICATION; ETCH; SENSITIVITY; DEPENDENCE; SENSORS; MODEL; WAFER;
D O I
10.3390/mi8100308
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Resonant biosensors are known for their high accuracy and high level of miniaturization. However, their fabrication costs prevent them from being used as disposable sensors and their effective commercial success will depend on their ability to be reused repeatedly. Accordingly, all the parts of the sensor in contact with the fluid need to tolerate the regenerative process which uses different chemicals (H3PO4, H2SO4 based baths) without degrading the characteristics of the sensor. In this paper, we propose a fluidic interface that can meet these requirements, and control the liquid flow uniformity at the surface of the vibrating area. We study different inlet and outlet channel configurations, estimating their performance using numerical simulations based on finite element method (FEM). The interfaces were fabricated using wet chemical etching on Si, which has all the desirable characteristics for a reusable biosensor circuit. Using a glass cover, we could observe the circulation of liquid near the active surface, and by using micro-particle image velocimetry (PIV) on large surface area we could verify experimentally the effectiveness of the different designs and compare with simulation results.
引用
收藏
页数:15
相关论文
共 36 条
[1]   Inertial microfluidic physics [J].
Amini, Hamed ;
Lee, Wonhee ;
Di Carlo, Dino .
LAB ON A CHIP, 2014, 14 (15) :2739-2761
[2]   Fabrication and characterization of silicon micro-funnels and tapered micro-channels for stochastic sensing applications [J].
Archer, Marie J. ;
Ligler, Frances S. .
SENSORS, 2008, 8 (06) :3848-3872
[3]  
Bao L., 1999, ACTA, V132, P61, DOI [10.1007/PL00010074, DOI 10.1007/PL00010074]
[4]   RECONSTITUTION OF A PROTEIN MONOLAYER ON THIOLATES FUNCTIONALIZED GaAs SURFACE [J].
Bienaime, A. ;
Leblois, T. ;
Lucchi, G. ;
Blondeau-Patissier, V. ;
Ducoroy, P. ;
Boireau, W. ;
Elie-Caille, C. .
INTERNATIONAL JOURNAL OF NANOSCIENCE, 2012, 11 (04)
[5]   Design and microfabrication of a lateral excited gallium arsenide biosensor [J].
Bienaime, A. ;
Liu, L. ;
Elie-Caille, C. ;
Leblois, T. .
EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2012, 57 (02)
[6]   Analysis and prevention of convex corner undercutting in bulk micromachined silicon microstructures [J].
Biswas, K. ;
Das, S. ;
Kal, S. .
MICROELECTRONICS JOURNAL, 2006, 37 (08) :765-769
[7]  
Bonnet D., 2012, Journal of Flow Visualization and Image Processing, V19, P239
[8]   Low-level detection of a Bacillus anthracis simulant using Love-wave biosensors on 36°YX LiTaO3 [J].
Branch, DW ;
Brozik, SM .
BIOSENSORS & BIOELECTRONICS, 2004, 19 (08) :849-859
[9]   A strategy for sensitivity and specificity enhancements in prostate specific antigen-α1-antichymotrypsin detection based on surface plasmon resonance [J].
Cao, C ;
Kim, JP ;
Kim, BW ;
Chae, H ;
Yoon, HC ;
Yang, SS ;
Sim, SJ .
BIOSENSORS & BIOELECTRONICS, 2006, 21 (11) :2106-2113
[10]  
Elwenspoek M., 2004, SILICON MICROMACHINI