Department of Chemistry, Louisiana State University, Baton Rouge, LA 70803, USA.
Lab Chip. 2010 Jan 7;10(1):66-73. doi: 10.1039/b908759a. Epub 2009 Nov 4.
The fabrication and characterization of a novel cyclic olefin copolymer (COC) waveguide embedded in a poly(methyl methacrylate), PMMA, fluidic chip configured in a multi-channel format with an integrated monolithic prism for evanescent fluorescence excitation are reported. The fabrication approach allowed the embedded waveguide to be situated orthogonal to a series of fluidic channels within the PMMA wafer to sample fluorescent solutions in these channels using the evanescence properties of the waveguide. Construction of the device was achieved using several fabrication techniques including high precision micromilling, hot embossing and stenciling of a polymer melt to form the waveguide and coupling prism. A waveguide channel was fabricated in the fluidic chip's cover plate, also made from PMMA, and was loaded with a COC solution using a pre-cast poly(dimethylsiloxane), PDMS, stencil containing a prism-shaped recess. The PMMA substrate contained multiple channels (100 microm wide x 30 microm deep with a pitch of 100 microm) that were situated orthogonal to the waveguide to allow penetration of the evanescent field into the sampling solution. The optical properties of the waveguide in terms of its transmission properties and penetration depth of the evanescent field in the adjacent solution were evaluated. Finally, the device was used for laser-induced fluorescence evanescent excitation of a dye solution hydrodynamically flowing through multiple microfluidic channels in the chip and processed using a microscope equipped with a charge-coupled device (CCD) for parallel readout. The device and optical system were able to image 11 channels simultaneously with a limit-of-detection of 7.1 x 10(-20) mol at a signal-to-noise ratio of 2. The waveguide was simple to manufacture and could be scaled to illuminate much higher channel numbers making it appropriate for high-throughput measurements using evanescent excitation.
本文报道了一种新型环状烯烃共聚物(COC)波导的制作和特性,该波导嵌入在聚甲基丙烯酸甲酯(PMMA)微流控芯片中,以多通道格式配置,并集成了用于荧光激发的整体式单片棱镜。该制作方法使嵌入式波导垂直于 PMMA 晶片中的一系列流道,从而利用波导的消逝场特性从这些流道中采样荧光溶液。该器件的构建使用了几种制造技术,包括高精度微铣削、聚合物熔体的热压印和模板印刷,以形成波导和耦合棱镜。在由 PMMA 制成的微流控芯片的盖板中制造了波导通道,并使用预制的聚二甲基硅氧烷(PDMS)模板印刷形成带有棱镜形凹陷的 COC 溶液。PMMA 基板包含多个通道(100 微米宽 x 30 微米深,间距为 100 微米),这些通道与波导正交,以使消逝场能够渗透到采样溶液中。评估了波导在传输特性和相邻溶液中消逝场的穿透深度方面的光学特性。最后,该设备用于激光诱导荧光消逝激发芯片中多个微流道内的染料溶液,使用配备电荷耦合器件(CCD)的显微镜进行处理,用于并行读出。该设备和光学系统能够同时对 11 个通道进行成像,在信噪比为 2 时,检测限为 7.1×10(-20)mol。波导易于制造,可以扩展到更高的通道数量,非常适合使用消逝激发进行高通量测量。