Rapid prototyping of thermoset polyester microfluidic devices

被引:81
作者
Fiorini, GS [1 ]
Lorenz, RM [1 ]
Kuo, JS [1 ]
Chiu, DT [1 ]
机构
[1] Univ Washington, Dept Chem, Seattle, WA 98195 USA
关键词
D O I
10.1021/ac0498922
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
This paper presents a simple procedure for the fabrication of thermoset polyester (TPE) microfluidic systems and discusses the properties of the final devices. TPE chips are fabricated in less than 3 h by casting TPE resin directly on a lithographically patterned (SU-8) silicon master. Thorough curing of the devices is obtained through the combined use of ultraviolet light and heat, as both an ultraviolet and a thermal initiator are employed in the resin mixture. Features on the order of micrometers and greater are routinely reproduced using the presented procedure, including complex designs and multilayer features. The surface of TPE was characterized using contact angle measurements and X-ray photoelectron spectroscopy (XPS). Following oxygen plasma treatment, the hydrophilicity of the surface of TPE increases (determined by contact angle measurements) and the proportion of oxygen-containing functional groups also increases (determined by XPS), which indicates a correlated increase in the charge density on the surface. Native TPE microchannels support electroosmotic flow (EOF) toward the cathode, with an average electroosmotic mobility of 1.3 x 10(-4) cm(2) V-1 s(-1) for a 50-mum square channel (20 mM borate at pH 9); following plasma treatment (5 min at 30 W and 0.3 mbar), EOF is enhanced by a factor of 2. This enhancement of the EOF from plasma treatment is stable for days, with no significant decrease noted during the 5-day period that we monitored. Using plasma-treated TPE microchannels, we demonstrate the separation of a mixture of fluorescein-tagged amino acids (glycine, glutamic acid, aspartic acid). TPE devices are up to 90% transparent (for similar to2-mm-thick sample) to visible light (400-800 nm). The compatibility of TPE with a wide range of solvents was tested over a 24-h period, and the material performed well with acids, bases, alcohols, cyclohexane, n-heptane, and toluene but not with chlorinated solvents (dichloromethane, chloroform).
引用
收藏
页码:4697 / 4704
页数:8
相关论文
共 82 条
  • [11] PDMS 2D optical lens integrated with microfluidic channels: principle and characterization
    Camou, S
    Fujita, H
    Fujii, T
    [J]. LAB ON A CHIP, 2003, 3 (01): : 40 - 45
  • [12] An integrated fluorescence detection system in poly(dimethylsiloxane) for microfluidic applications
    Chabinyc, ML
    Chiu, DT
    McDonald, JC
    Stroock, AD
    Christian, JF
    Karger, AM
    Whitesides, GM
    [J]. ANALYTICAL CHEMISTRY, 2001, 73 (18) : 4491 - 4498
  • [13] Chen JR, 1999, J APPL POLYM SCI, V72, P1327
  • [14] A prototype two-dimensional capillary electrophoresis system fabricated in poly(dimethylsiloxane)
    Chen, XX
    Wu, HK
    Mao, CD
    Whitesides, GM
    [J]. ANALYTICAL CHEMISTRY, 2002, 74 (08) : 1772 - 1778
  • [15] Using three-dimensional microfluidic networks for solving computationally hard problems
    Chiu, DT
    Pezzoli, E
    Wu, HK
    Stroock, AD
    Whitesides, GM
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (06) : 2961 - 2966
  • [16] Patterned deposition of cells and proteins onto surfaces by using three-dimensional microfluidic systems
    Chiu, DT
    Jeon, NL
    Huang, S
    Kane, RS
    Wargo, CJ
    Choi, IS
    Ingber, DE
    Whitesides, GM
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (06) : 2408 - 2413
  • [17] Passively driven integrated microfluidic system for separation of motile sperm
    Cho, BS
    Schuster, TG
    Zhu, XY
    Chang, D
    Smith, GD
    Takayama, S
    [J]. ANALYTICAL CHEMISTRY, 2003, 75 (07) : 1671 - 1675
  • [18] Clark SG, 2002, BIOL REPROD, V66, P312
  • [19] A microscale-molecular weight sensor: Probing molecular diffusion between adjacent laminar flows by refractive index gradient detection
    Costin, CD
    Synovec, RE
    [J]. ANALYTICAL CHEMISTRY, 2002, 74 (17) : 4558 - 4565
  • [20] Microchip devices for high-efficiency separations
    Culbertson, CT
    Jacobson, SC
    Ramsey, JM
    [J]. ANALYTICAL CHEMISTRY, 2000, 72 (23) : 5814 - 5819