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A High-Efficiency Driver Circuit for a Gas-Sensor Microheater Based on a Switch-Mode DC-to-DC Converter

机译:基于开关模式DC-DC转换器的气体传感器微热器的高效驱动电路

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摘要

Low power consumption is one of the critical factors for successful Internet of Things (IoT) applications. In such applications, gas sensors have become a main source of power consumption because energy conversion efficiency of the microheater is relative over a wide range of operating temperatures. To improve the energy-conversion efficiency of gas-sensor microheaters, this paper proposes integrated switch-mode DC-to-DC power converter technology which we compare with traditional driving methods such as pulse-width modulation and the linear mode. The results indicate that energy conversion efficiency with this proposed method remains over 90% from 150 °C to 400 °C when using a 3.0, 4.2 and 5.0 V power supply. Energy-conversion efficiency increases by 1–74% compared with results obtained using the traditional driving methods, and the sensing film still detects alcohol and toluene at 200 °C and 280 °C, respectively, with high energy conversion efficiency. These results show that the proposed method is useful and should be further developed to drive gas-sensor microheaters, and then integrated into the circuits of the complementary metal-oxide-semiconductor micro electro mechanical systems (CMOS-MEMS).
机译:低功耗是成功互联网(物联网)应用的关键因素之一。在这种应用中,气体传感器已成为功耗的主要来源,因为微热器的能量转换效率相对于各种操作温度相对。为了提高气体传感器微热器的能量转换效率,本文提出了与脉冲宽度调制等传统驱动方法相比的集成开关模式DC-DC功率转换器技术,如脉冲宽度调制和线性模式。结果表明,使用3.0,4.2和5.0 V电源时,具有该提出的方法的能量转换效率在150°C至400°C中仍然超过90%。与使用传统驱动方法获得的结果相比,能量转换效率增加1-74%,并且传感膜仍然分别在200℃和280°C下检测醇和甲苯,具有高能量转换效率。这些结果表明,该方法是有用的,应进一步开发出来以驱动气体传感器微热器,然后集成到互补金属氧化物半导体微电器(CMOS-MEM)的电路中。

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