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首页> 外文期刊>Journal of Microelectromechanical Systems >Optimization of Design and Fabrication Processes for Realization of a PDMS-SOG-Silicon DNA Amplification Chip
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Optimization of Design and Fabrication Processes for Realization of a PDMS-SOG-Silicon DNA Amplification Chip

机译:实现PDMS-SOG-硅DNA扩增芯片的设计和制造工艺的优化

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A novel on-chip inexpensive platform to perform DNA amplification has been fabricated by optimizing the design and microfabrication processes using polydimethyl siloxane (PDMS) and silicon. The silicon base contains a set of microfabricated platinum heater structures on the bottom with a 140-nm-thick spin-on-glass (SOG) layer on the top and a 3 $mu{rm l}$ replica molded PDMS chamber with feed channels and inlet–outlet ports bonded to this film. The plasma exposed SOG surface is found to undergo recovery of hydrophobicity with time as indicated by an increase in advancing contact angle and bonds very well to another plasma exposed PDMS piece. The bonding protocol developed can be used for a diverse range of substrates, which may form a basis for integration of fluidic assays with microelectronics. The hydrophobic recovery of the microchamber and channels also eliminate the need for various surface passivation techniques for polymerase chain reaction (PCR) chips. A thermal cycler with flexible PCR cycle control is designed and implemented by using a sensing thermocouple. The amplification has been tested using picogram-level template DNA concentration. We have further been able to show negligible nonspecific binding of the template DNA to the hydrophobic interiors of our device by fluorescence measurements and have been able to successfully demonstrate the possibility of multiple usage of this chip without cross-contamination from the previous run.1708
机译:通过优化使用聚二甲基硅氧烷(PDMS)和硅的设计和微细加工工艺,已经制造出了一种新颖的,廉价的执行DNA扩增的平台。硅基底在底部包含一组微型铂加热器结构,在顶部具有140 nm厚的旋涂玻璃(SOG)层,并带有带进料通道的3微米复制模制PDMS腔室以及与该薄膜相连的进出口端口。发现等离子体暴露的SOG表面会随着时间的流逝恢复疏水性,如前进接触角的增加所表明,并且与另一等离子体暴露的PDMS片之间的粘合性非常好。开发的键合规程可用于多种底物,这可为流体分析与微电子学集成奠定基础。微腔室和通道的疏水性回收还消除了对聚合酶链反应(PCR)芯片的各种表面钝化技术的需求。通过使用感测热电偶设计和实现具有灵活的PCR循环控制的热循环仪。已使用皮克级模板DNA浓度测试了扩增。我们还能够通过荧光测量显示模板DNA与设备疏水内部的非特异性结合可以忽略不计,并且已经成功地证明了该芯片多次使用的可能性,而与之前的运行没有交叉污染。1708

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