Hisamoto Hideaki, Nakashima Yuya, Kitamura Chihiro, Funano Shun-Ichi, Yasuoka Midori, Morishima Keisuke, Kikutani Yoshikuni, Kitamori Takehiko, Terabe Shigeru
Department of Material Science, Graduate School of Science, Himeji Institute of Technology, 3-2-1 Kouto, Kamigori-cho, Ako-gun, Hyogo 678-1297 Japan.
Anal Chem. 2004 Jun 1;76(11):3222-8. doi: 10.1021/ac035385t.
A novel concept for assembling various chemical functions onto a single microfluidic device is proposed. The concept, called a capillary-assembled microchip, involves embedding chemically functionalized capillaries into a lattice microchannel network fabricated on poly(dimethylsiloxane) (PDMS). The network has the same channel dimensions as the outer dimensions of the capillaries. In this paper, we focus on square capillaries to be embedded into a PDMS microchannel network having a square cross section. The combination of hard glass square capillary and soft square PDMS channel allows successful fabrication of a microfluidic device without any solution leakage, and which can use diffusion-based two-solution mixing. Two different types of chemically modified capillaries, an ion-sensing capillary and a pH-sensing capillary, are prepared by coating a hydrophobic plasticized poly(vinyl chloride) membrane and a hydrophilic poly(ethyleneglycol) membrane containing functional molecules onto the inner surface of capillaries. Then, they are cut into appropriate lengths and arranged on a single microchip to prepare a dual-analyte sensing system. The concept proposed here offers advantages inherent to using a planar microfluidic device and of chemical functionality of immobilized molecules. Therefore, we expect to fabricate various types of chemically functionalized microfluidic devices soon.
提出了一种将各种化学功能整合到单个微流控装置上的新构想。这种被称为毛细管组装微芯片的构想,涉及将化学功能化的毛细管嵌入到聚二甲基硅氧烷(PDMS)上制造的晶格微通道网络中。该网络的通道尺寸与毛细管的外部尺寸相同。在本文中,我们专注于将方形毛细管嵌入具有方形横截面的PDMS微通道网络中。硬质玻璃方形毛细管与柔软的方形PDMS通道的结合,使得能够成功制造出无任何溶液泄漏且可采用基于扩散的双溶液混合的微流控装置。通过将含有功能分子的疏水性增塑聚氯乙烯膜和亲水性聚乙二醇膜涂覆在毛细管内表面,制备了两种不同类型的化学修饰毛细管,即离子传感毛细管和pH传感毛细管。然后,将它们切成适当长度并排列在单个微芯片上,以制备双分析物传感系统。这里提出的构想兼具使用平面微流控装置的固有优势以及固定分子的化学功能。因此,我们期望很快能制造出各种类型的化学功能化微流控装置。