Fabrication and laser patterning of polystyrene optical oxygen sensor films for lab-on-a-chip applications

被引:22
作者
Grist, S. M. [1 ]
Oyunerdene, N. [1 ]
Flueckiger, J. [1 ]
Kim, J. [2 ]
Wong, P. C. [2 ]
Chrostowski, L. [1 ]
Cheung, K. C. [1 ]
机构
[1] Univ British Columbia, Dept Elect Engn, Vancouver, BC, Canada
[2] Univ British Columbia, Dept Chem, Interfacial Anal & React Lab, Vancouver, BC, Canada
基金
加拿大自然科学与工程研究理事会; 加拿大健康研究院;
关键词
TIME; POLYMETHYLMETHACRYLATE; FLUORESCENCE; GRADIENTS; POLYMERS; ABLATION; CELLS;
D O I
10.1039/c4an00765d
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
We present a novel and simple method for patterning oxygen-sensitive polystyrene thin films and demonstrate its potential for integration with microfluidic lab-on-a-chip devices. Optical oxygen sensing films composed of polystyrene with an embedded luminescent oxygen-sensitive dye present a convenient option for the measurement of oxygen. levels in microfluidic and lab-on-a-chip devices; however, patterning and integrating the films with poly(dimethylsiloxane) (PDMS) microfluidic devices has proven difficult due to a residue after dry etch patterning that inhibits subsequent PDMS bonding. Our new method uses mask-less laser ablation by a commercial laser ablation system to define the outline of the structures and subsequent bulk film removal by aqueous lift-off. Because the bulk film is peeled or lifted off of the substrate rather than etched, the process is compatible with standard PDMS plasma bonding. We used ToF-SIMS analysis to investigate how laser ablation facilitates this fabrication process as well as why dry etching polystyrene inhibits PDMS plasma bonding. The results of this analysis showed evidence of chemical species formed during the laser ablation and dry etching processes that can produce these effects. Our new method's mask-less nature, simplicity, speed, and compatibility with PDMS bonding make it ideally suited for single-use lab-on-a-chip applications. To demonstrate the method's compatibility with PDMS microfluidics, we also present a demonstration of the sensors' integration into a microfluidic oxygen gradient generator device.
引用
收藏
页码:5718 / 5727
页数:10
相关论文
共 43 条
  • [1] Probes and polymers for optical sensing of oxygen
    Amao, Y
    [J]. MICROCHIMICA ACTA, 2003, 143 (01) : 1 - 12
  • [2] Photopatternable Polymeric Membranes for Optical Oxygen Sensors
    Ambekar, Raghu
    Park, Jongwon
    Henthorn, David B.
    Kim, Chang-Soo
    [J]. IEEE SENSORS JOURNAL, 2009, 9 (1-2) : 169 - 175
  • [3] Studies on surface wettability of poly(dimethyl) siloxane (PDMS) and glass under oxygen-plasma treatment and correlation with bond strength
    Bhattacharya, S
    Datta, A
    Berg, JM
    Gangopadhyay, S
    [J]. JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2005, 14 (03) : 590 - 597
  • [4] Generation of oxygen gradients in microfluidic devices for cell culture using spatially confined chemical reactions
    Chen, Yung-Ann
    King, Andrew D.
    Shih, Hsiu-Chen
    Peng, Chien-Chung
    Wu, Chueh-Yu
    Liao, Wei-Hao
    Tung, Yi-Chung
    [J]. LAB ON A CHIP, 2011, 11 (21) : 3626 - 3633
  • [5] Ratiometric porphyrin-based layers and nanoparticles for measuring oxygen in biosamples
    Cywinski, Piotr J.
    Moro, Artur J.
    Stanca, Sarmiza E.
    Biskup, Christoph
    Mohr, Gerhard J.
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2009, 135 (02) : 472 - 477
  • [6] ORIGIN AND PREVENTION OF HIGH CONTACT RESISTANCE IN MULTILEVEL METAL-POLYIMIDE STRUCTURES
    DAY, DR
    SENTURIA, SD
    [J]. JOURNAL OF ELECTRONIC MATERIALS, 1982, 11 (03) : 441 - 452
  • [7] Oxygen sensors based on luminescence quenching
    Demas, JN
    DeGraff, BA
    Coleman, PB
    [J]. ANALYTICAL CHEMISTRY, 1999, 71 (23) : 793A - 800A
  • [8] Maskless pattern transfer using 355 nm laser
    Gabran, S. R. I.
    Mansour, R. R.
    Salama, M. M. A.
    [J]. OPTICS AND LASERS IN ENGINEERING, 2012, 50 (05) : 710 - 716
  • [9] Grist S. M., 2012, 16 INT C MIN SYST CH
  • [10] Optical Oxygen Sensors for Applications in Microfluidic Cell Culture
    Grist, Samantha M.
    Chrostowski, Lukas
    Cheung, Karen C.
    [J]. SENSORS, 2010, 10 (10): : 9286 - 9316