Thermal management of BioMEMS

D. Sadler, R. Changrani, P. Roberts, C. Chou, F. Zenhausern
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引用次数: 7

Abstract

Integrated microfluidic devices for amplification and detection of biological samples that employ closed-loop temperature monitoring and control have been demonstrated within a multilayer low temperature co-fired ceramics (LTCC) platform. Devices designed within this platform demonstrate a high level of integration including integrated microfluidic channels, thick-film screen-printed Ag-Pd heaters, surface mounted temperature sensors, and air-gaps for thermal isolation. In addition, thermal-fluidic finite element models have been developed using CFDRC ACE+ software which allow for optimization of such parameters as heater input power, fluid flow rate, sensor placement, and air-gap size and placement. Two examples of devices that make use of these concepts are provided. The first is a continuous flow polymerase chain reaction (PCR) device that requires three thermally isolated zones of 94/spl deg/C, 65/spl deg/C, and 72/spl deg/C, and the second is an electronic DNA detection chip which requires hybridization at 35/spl deg/C. Both devices contain integrated heaters and surface mount silicon transistors which function as temperature sensors. Closed loop feedback control is provided by an external PI controller that monitors the temperature dependent I-V relationship of the sensor and adjusts heater power accordingly. Experimental data confirms that better than +/- 0.5/spl deg/C can be maintained for these devices irrespective of changing ambient conditions. In addition, excellent matching with model predictions has been achieved, thus providing a powerful design tool for thermal-fluidic microsystems.
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生物医学系统的热管理
在多层低温共烧陶瓷(LTCC)平台上展示了用于生物样品扩增和检测的集成微流控装置,该装置采用闭环温度监测和控制。在该平台内设计的设备展示了高水平的集成,包括集成的微流体通道,厚膜丝网印刷Ag-Pd加热器,表面安装的温度传感器和用于热隔离的气隙。此外,利用CFDRC ACE+软件开发了热流体有限元模型,可以优化加热器输入功率、流体流量、传感器位置、气隙大小和位置等参数。提供了两个使用这些概念的设备示例。第一种是连续流动聚合酶链反应(PCR)装置,需要94/spl℃、65/spl℃和72/spl℃三个热隔离区;第二种是电子DNA检测芯片,需要在35/spl℃进行杂交。这两种设备都包含集成加热器和表面贴装硅晶体管,用作温度传感器。闭环反馈控制由外部PI控制器提供,该控制器监控传感器的温度依赖I-V关系,并相应地调整加热器功率。实验数据证实,无论环境条件如何变化,这些器件的温度都可以保持在+/- 0.5/spl℃以上。此外,还实现了与模型预测的良好匹配,从而为热流体微系统的设计提供了强大的工具。
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