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Glass biochip fabrication by laser micromachining and glass-molding process

机译:激光微加工和玻璃成型工艺制造玻璃生物芯片

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摘要

Due to their low cost, small size, and high-speed performance, biochips are often used in various bio-experiments. Compared with polymer-based biochips, glass-based substrates are less sensitive to heat and organic environments. This study presents a hybrid processing approach that uses laser micromachining (LMM) and precision glass molding (PGM) techniques to mass-produce glass-based biochips. A silicon carbide (SiC) mold with an outside diameter of 20 mm was used to hot emboss biochip channels measuring 200 μm wide and 185 μm deep. This study also identifies the optimal conditions for glass molding when processing soda-lime glass for biochip applications, and discusses the influence of the major processing parameters on biochip channel depth. This study uses the Taguchi method to assess the effects of several molding parameters on larger-the-better performance characteristics. The experiments in this study consider the effects of several molding parameters, such as molding temperature, pressing force, moving speed, temperature holding time, and vacuum environment, to achieve optimum characteristics for biochip channels. Orthogonal array analysis indicates that the optimal process parameters includes a 620 ℃ molding temperature, 1 kN pressing force, 5 mm/min moving speed, 60 s temperature holding time, and a vacuum-free environment. This study also investigates the surface roughness of glass biochip channels.
机译:由于其低成本,小尺寸和高速性能,生物芯片经常用于各种生物实验中。与基于聚合物的生物芯片相比,基于玻璃的基材对热和有机环境的敏感性较低。这项研究提出了一种混合处理方法,该方法使用激光微加工(LMM)和精密玻璃成型(PGM)技术来批量生产基于玻璃的生物芯片。外径为20 mm的碳化硅(SiC)模具用于热压宽200μm,深185μm的生物芯片通道。这项研究还确定了用于生物芯片应用的钠钙玻璃加工时玻璃成型的最佳条件,并讨论了主要加工参数对生物芯片通道深度的影响。这项研究使用Taguchi方法来评估几个成型参数对更好的性能特征的影响。本研究中的实验考虑了多个成型参数的影响,例如成型温度,压力,移动速度,保温时间和真空环境,以实现生物芯片通道的最佳特性。正交阵列分析表明,最佳工艺参数包括620℃成型温度,1 kN压力,5 mm / min移动速度,60 s保温时间和无真空环境。这项研究还调查了玻璃生物芯片通道的表面粗糙度。

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