Abstract

Capacitors made of interdigitated electrodes (IDEs) as a transducer platform for the sensing of volatile organic compounds (VOCs) have advantages due to their lower power operation and fabrication using standard micro-fabrication techniques. Integrating a micro-electromechanical system (MEMS), such as a microhotplate with IDE capacitor, further allows study of the temperature-dependent sensing response of VOCs. In this paper, the design, fabrication, and characterization of a low-power MEMS microhotplate with IDE capacitor to study the temperature-dependent sensing response to methanol using Zeolitic imidazolate framework (ZIF-8), a class of metal-organic framework (MOF), is presented. A Titanium nitride (TiN) microhotplate with aluminum IDEs suspended on a silicon nitride membrane is fabricated and characterized. The power consumption of the ZIF-8 MOF-coated device at an operating temperature of 50 C is 4.5 mW and at 200 C it is 26 mW. A calibration methodology for the effects of temperature of the isolation layer between the microhotplate electrodes and the capacitor IDEs is developed. The device coated with ZIF-8 MOF shows a response to methanol in the concentration range of 500 ppm to 7000 ppm. The detection limit of the sensor for methanol vapor at 20 C is 100 ppm. In situ study of sensing properties of ZIF-8 MOF to methanol in the temperature range from 20 C to 50 C using the integrated microhotplate and IDE capacitor is presented. The kinetics of temperature-dependent adsorption and desorption of methanol by ZIF-8 MOF are fitted with double-exponential models. With the increase in temperature from 20 C to 50 C, the response time for sensing of methanol vapor concentration of 5000 ppm decreases by 28%, whereas the recovery time decreases by 70%.

Highlights

  • Methanol is an organic solvent found in dyes, paints, perfumes and automotive fuel

  • These results indicate that the amount of analyte adsorbed by Zeolitic imidazolate frameworks (ZIFs)-8 metal-organic framework (MOF) decreases with increasing temperatures

  • We report a successful demonstration of ZIF-8 MOF capacitive sensor with integrated Titanium nitride (TiN) microhotplate

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Summary

A Low-Power MEMS IDE Capacitor with Integrated

Microhotplate: Application as Methanol Sensor using a Metal-Organic Framework Coating as Affinity Layer. Venkatesh 1,† , Sumit Sachdeva 2,† , Brahim El Mansouri 3 , Jia Wei 3, *,‡ , Andre Bossche 3 , Duco Bosma 2 , Louis C. R. Sudhölter 2 and Guo Qi Zhang 1,3, *,‡. Beijing Research Centre, Delft University of Technology, Mekelweg 4, 2628 CD Delft, The Netherlands;. Current address: Delft University of Technology, Mekelweg 4, 2628 CD Delft, The Netherlands. Received: 27 December 2018; Accepted: 13 February 2019; Published: 20 February 2019

Introduction
Device Design
Device Fabrication
Synthesis of ZIF-8 MOF
Structural Characterization
Experimental Setup and Measurement Procedure
Device and Material Characterization
Thermal Characterization
Sensing Measurements
Temperature-Dependent Adsorption and Desorption Kinetics
Conclusions
Full Text
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