4.7 Article

Thermal conductivity detector (TCD)-type gas sensor based on a batch-fabricated 1D nanoheater for ultra-low power consumption

期刊

SENSORS AND ACTUATORS B-CHEMICAL
卷 371, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.snb.2022.132541

关键词

Gas sensor; Ultralow power; Suspended 1D nanoheater; Thermal conductivity detector; Pulse -width modulation; Batch fabrication

资金

  1. National Research Foundation of Korea (NRF) - Ministry of Education [2020R1A6A1A03040570]
  2. Technology Innovation Program - Ministry of Trade, Industry and Energy, Republic of Korea [00144157]
  3. Korea Evaluation Institute of Industrial Technology (KEIT) [00144157] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

In this study, an ultralow-power thermal conductivity detector (TCD) was developed using cost-effective technology. The TCD showed high sensitivity and ultrafast response/recovery by optimizing the nanoheater's aspect ratio and employing a suspended architecture. The sensor exhibited a linear gas response and reduced power consumption through pulse-width modulation.
Thermal conductivity detectors (TCDs) are widely used to detect high-concentration gases or identify low -concentration gases in chromatography, owing to their fast response and recovery time for a wide range of gases. However, conventional TCD devices require large power consumption because of their relatively large sizes, which limits their applicability, specifically in IoT. In this study, an ultralow-power TCD was implemented for use as a gas sensor by manufacturing a suspended nanoheater via cost-effective wafer-level microfabrication technology (i.e., carbon-microelectromechanical systems). The aspect ratio of the nanoheater was optimized for a fixed minimum section area (width = 200-300 nm, thickness = 300-400 nm) using simulations and experiments. The small size, high aspect ratio (-270, corresponding to a nanoheater length of 80 mu m), and suspended ar-chitecture allowed the nanoheater-based gas sensor to operate with high sensitivity and ultrafast response/re-covery (time constant of less than 1 mu s). This fast response enabled the sensor to operate with pulse-width modulation, reducing the power by 1/1000 (240 nW). The nanoheater-based gas sensor exhibited a linear gas response for various high-concentration gases (H2: 1-20 %, Ar: 1-100 %, He: 1-5 %). Moreover, the nanoheater was fabricated using only wafer-level microfabrication processes, ensuring cost-effective sensor manufacturing. Thus, nanoheater-based gas sensors are expected to be used in various portable IoT devices.

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