离心力与热管理生物芯片制造与检测系统的开发

Ming-Yih Lee, Chen-Ya Wang, Huang‐Chou Lin, H. Chiang, Liang-Shiuan Su, Tsung-Wei Chang
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摘要

微机电系统(MEMS)的发展推动了微加工器件的成功,微加工器件提供了许多特定的平台,可以将实验室集成在芯片上,并管理微生化反应分析。然而,大多数微制造设备,特别是在生物芯片设计中,依赖于半导体或LIGA工艺,因此设备的配置非常复杂且耗费金钱。此外,纳米尺度的小型化在生物医学反应中并不总是重要的。因此,我们的研究目标是开发一种离心力和热管理生物芯片的制造和检测系统,以改进芯片实验室中采用半导体设计的复杂泵和阀,与传统实验室技术相比节省时间和金钱。我们的系统采用solidworks软件和计算机数控机床设计微流控模式,采用温度传感器反馈控制的热压机设计密封生物芯片,采用服务器变频电机的离心机代替泵和阀,利用离心力引导样品迁移。该系统的硬件包括离心机、热压机和微流控加工三部分;生物芯片的应用是检测临床和医学生物反应。本研究开发的“离心力和热管理生物芯片制造和检测系统”是一种台式设备,可用于医学和临床检查的多个领域,将来还可以通过增加温度控制程序与聚合酶链反应(PCR)相结合。
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Development of fabrication and detection system for centrifugal force and thermal management biochip
The development of micro-electro-mechanical systems (MEMS) advances the success of microfabricated devices, and microfabricated devices offer many specific platforms that can integrate a laboratory on a chip and manage micro biochemical reaction analysis. Nevertheless, most microfabricated devices, especially in biochip design, depend on semi-conductor or LIGA process so that the configuration of devices is complex and money-consumed. Furthermore, miniaturization in nano-scale isn't always significant in bio-medical reactions. Thus, the aim of our research is to develop a fabrication and detection system of centrifugal-force and thermal management biochip, which improves the complex pumps and valves designed by semi-conductor application in lab-on-a-chip, and it saves time and money in the comparison of traditional lab technology. Our system uses the soft-ware-SolidWorks and computer numerical control (CNC) machine to design microfluidic patterns, the heat pressure machine with feedback control of temperature sensor to design the hermetically sealed biochip, and the centrifugal machine with server frequency conversion motor to lead sample mobility by centrifugal force instead of pumps and valves. The hardware of this system includes three parts: centrifugal machine, heat pressure machine, and microfluidic fabrication; the application of the biochip is to detect clinical and medicine bio-reactions. Our "fabrication and detection system for centrifugal-force and thermal management biochip" developed in this study is a on-table facility and can use in several areas of medical and clinical examinations, it can also combine with polymerase chain reaction (PCR) by adding temperature controlling procedure in the future.
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