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A CMOS integrated low-voltage low-power time-controlled interface for chemical resistive sensors

机译:用于化学电阻传感器的CMOS集成低压低功耗时间控制接口

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摘要

In this paper,an innovative integrated interface circuit, suitable for wide range resistive sensors, such as chemical devices for gas sensing, is presented. The key characteristic is the ability to overcome the main limit of the circuits based on the resistance-to-time (R-T) conversion, that is the long measuring time occurring in the evaluation of high-value resistances. The proposed solution is based on a tricky oscillating circuit architecture performing a sort of "compression" of the higher part of the resistive range, thus limiting the measuring time. The interface is oriented to the development of a single chip for resistive chemical sensor applications, thus it is designed to be as simple as possible, utilizing only operational amplifiers (Oas) and passive components. The proposed front-end is capable to estimate both the sensor resistance over a wide range (five decades) and, through the AC excitation voltage of the sensor, the in-parallel parasitic capacitance, for diagnosis purposes or to provide a more complete characterization of the sensor. Preliminary experimental measurements, conducted through a fabricated discrete component prototype PCB and utilizing commercial sample resistors and capacitors to emulate sensor behaviour, have shown the feasibility of the proposed approach in a wide resistive range. Further experimental results, achieved through the fabricated integrated circuit, developed in 0.35 μm standard CMOS technology, have shown good performance both for resistance and capacitance estimations. The on-chip integrated solution, requiring a silicon area of about 0.9 mm~2, supplied at 1.8 V and showing a low power consumption (lower than 600 Μw), results to be suitable for resistive sensor array configurations and portable applications, as also witnessed by an experimental test with CO gas and a sample commercial sensor.
机译:本文提出了一种创新的集成接口电路,适用于大范围的电阻传感器,例如用于气体传感的化学设备。关键特性是能够克服基于电阻时间(R-T)转换的电路的主要限制,即在评估高值电阻时需要很长的测量时间。所提出的解决方案基于棘手的振荡电路架构,该架构对电阻范围的较高部分执行某种“压缩”,从而限制了测量时间。该接口面向用于电阻式化学传感器应用的单个芯片的开发,因此仅使用运算放大器(Oas)和无源元件就可以设计得尽可能简单。所提出的前端能够估计宽范围(五十年)内的传感器电阻,并通过传感器的AC激励电压估计并联寄生电容,以用于诊断目的或提供更全面的特性描述。传感器。通过制造的分立元件原型PCB进行的初步实验测量,并利用商用采样电阻器和电容器来模拟传感器的性能,已证明了该方法在宽电阻范围内的可行性。通过以0.35μm标准CMOS技术开发的装配式集成电路实现的进一步实验结果显示出良好的电阻和电容估计性能。片上集成解决方案需要约0.9 mm〜2的硅面积,以1.8 V电压供电,并具有低功耗(低于600 MW),因此也适合电阻传感器阵列配置和便携式应用。通过使用CO气体和商用样品传感器进行的实验见证。

著录项

  • 来源
    《Sensors and Actuators》 |2013年第31期|313-318|共6页
  • 作者单位

    Department of Industrial and Information Engineering and Economics, University of L'Aquila, Via C. Gronchi 18, 67100 L'Aquila, Italy;

    Department of Information Engineering, University of Brescia, Via Branze 38,25123 Brescia, Italy;

    Department of Industrial and Information Engineering and Economics, University of L'Aquila, Via C. Gronchi 18, 67100 L'Aquila, Italy;

    Department of Information Engineering, University of Brescia, Via Branze 38,25123 Brescia, Italy;

    Department of Information Engineering, University of Brescia, Via Branze 38,25123 Brescia, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Wide range resistive sensors; Fast sensor readout; Parasitic capacitance estimation; Single-chip front-end;

    机译:大范围电阻传感器;快速的传感器读数;寄生电容估计;单芯片前端;

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