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首页> 外文期刊>Instrumentation and Measurement, IEEE Transactions on >An Electronic System to Heat MOX Sensors With Synchronized and Programmable Thermal Profiles
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An Electronic System to Heat MOX Sensors With Synchronized and Programmable Thermal Profiles

机译:电子系统,用于以同步和可编程的温度曲线加热MOX传感器

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摘要

Metal oxide (MOX) sensors are widely used in several application fields: environmental monitoring, home automation, food control, and so on. Research activities in this topic are oriented toward new materials and nanotechnologies, thus requiring new instruments for the sensor characterization and management. Often, in order to improve selectivity, sensitivity, stability, the sensor is heated according to purposely designed profiles. The repeatability of the measurement conditions strongly depends on the ability to perform a sensor resistance measurement in a synchronous fashion with respect to the imposed thermal profile. This work proposes an electronic equipment for a complete management of a generic MOX sensor. The system is able to estimate the sensor resistance in a range varying from tens of kilohms up to tens of gigohms, while driving the sensor heater with a thermal profile designed by the user. Thanks to the short readout time (10 ms) and to the synchronism between the heater management and the sensor resistance measurement, the system is suitable for monitoring fast transients and thermal dynamics of the sensors. In addition, an estimation of the sensor parasitic capacitance, modeled in parallel with the resistive part and on the order of few picofarads, is provided for diagnostic purposes. Experimental results conducted on both commercial resistors/capacitors emulating the sensor, and on a real $ hbox{SnO}_{2}$ nanowire-based sensor for carbon monoxide detection have demonstrated the validity of the proposed approach. Broad topic: 17. Measurement Techniques.
机译:金属氧化物(MOX)传感器广泛用于多个应用领域:环境监控,家庭自动化,食品控制等。该主题的研究活动面向新材料和纳米技术,因此需要用于传感器表征和管理的新仪器。通常,为了提高选择性,灵敏度,稳定性,根据专门设计的轮廓对传感器进行加热。测量条件的可重复性在很大程度上取决于相对于所施加的热分布以同步方式执行传感器电阻测量的能力。这项工作提出了一种用于全面管理通用MOX传感器的电子设备。该系统能够在由用户设计的热曲线驱动传感器加热器的同时,在数十千瓦至数十兆欧姆的范围内估计传感器电阻。由于较短的读取时间(10毫秒)以及加热器管理和传感器电阻测量之间的同步性,该系统适用于监视传感器的快速瞬变和热动态。另外,为了诊断目的,提供了与电阻部分并联并且数量级为几微微法拉的传感器寄生电容的估计。在模拟该传感器的商用电阻器/电容器以及用于一氧化碳检测的真实的基于hbox {SnO} _ {2} $纳米线的传感器上进行的实验结果证明了该方法的有效性。广泛的主题:17.测量技术。

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