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Development of Micro-Heaters with Optimized Temperature Compensation Design for Gas Sensors

机译:带有优化温度补偿设计的气体传感器微型加热器的开发

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摘要

One of the key components of a chemical gas sensor is a MEMS micro-heater. Micro-heaters are used in both semiconductor gas sensors and NDIR gas sensors; however they each require different heat dissipation characteristics. For the semiconductor gas sensors, a uniform temperature is required over a wide area of the heater. On the other hand, for the NDIR gas sensor, the micro-heater needs high levels of infrared radiation in order to increase sensitivity. In this study, a novel design of a poly-Si micro-heater is proposed to improve the uniformity of heat dissipation on the heating plate. Temperature uniformity of the micro-heater is achieved by compensating for the variation in power consumption around the perimeter of the heater. With the power compensated design, the uniform heating area is increased by 2.5 times and the average temperature goes up by 40 °C. Therefore, this power compensated micro-heater design is suitable for a semiconductor gas sensor. Meanwhile, the poly-Si micro-heater without compensation shows a higher level of infrared radiation under equal power consumption conditions. This indicates that the micro-heater without compensation is more suitable for a NDIR gas sensor. Furthermore, the micro-heater shows a short response time of less than 20ms, indicating a very high efficiency of pulse driving.
机译:MEMS微型加热器是化学气体传感器的关键组件之一。半导体气体传感器和NDIR气体传感器均使用微型加热器。但是它们各自需要不同的散热特性。对于半导体气体传感器,需要在加热器的整个区域上保持均匀的温度。另一方面,对于NDIR气体传感器,微加热器需要高水平的红外辐射以提高灵敏度。在这项研究中,提出了一种新颖的多晶硅微型加热器设计,以提高加热板上散热的均匀性。微型加热器的温度均匀性是通过补偿加热器周边的功耗变化来实现的。采用功率补偿设计,均匀加热面积增加了2.5倍,平均温度上升了40°C。因此,这种功率补偿型微加热器设计适用于半导体气体传感器。同时,没有补偿的多晶硅微型加热器在相同的功耗条件下显示出更高水平的红外辐射。这表明没有补偿的微加热器更适合于NDIR气体传感器。此外,微型加热器的响应时间短于20毫秒,表明脉冲驱动效率很高。

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