• 제목/요약/키워드: gas sensing

검색결과 787건 처리시간 0.024초

SiC 쇼트키 장벽 다이오드를 이용한 CO 가스 감지 특성에 관한 연구 (A study on CO gas sensing characteristics using SiC Schottky diodes)

  • 김창교;노일호;조남인;유홍진;기창진
    • 한국산학기술학회논문지
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    • 제5권1호
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    • pp.83-86
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    • 2004
  • 고온용 마이크로 전자소자를 이용한 일산화탄소 가스센서를 개발하였다. 100-300℃의 영역에서 가스 감지 특성을 조사하였다. 센서의 가스 감도는 높고, 감지속도는 빠르고 센서는 재현성을 보여 주었다. Pt-SiC 및 Pt-SnO₂ 다이오드는 표준 반도체 공정을 이용하여 제작하였다. CO 가스 감지 특성은 정상상태 및 과도 상태의 조건아래에서 Ⅰ-Ⅴ 및 △Ⅰ-t법을 이용하여 CO 가스 농도와 온도의 함수로서 분석하였다. Pt-SnO₂촉매 층을 갖는 소자의 가스 감도가 Pt 게이트만으로 이루어진 소자보다 높았다. 실험 결과는 SnO₂층이 Pt막의 촉매 반응을 향상시키는 것을 보여주었다.

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신경회로망 알고리즘과 ATmega128칩을 활용한 자동차용 지능형 AQS 시스템 (Intelligent AQS System with Artificial Neural Network Algorithm and ATmega128 Chip in Automobile)

  • 정완영;이승철
    • 제어로봇시스템학회논문지
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    • 제12권6호
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    • pp.539-546
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    • 2006
  • The Air Quality Sensor(AQS), located near the fresh air inlet, serves to reduce the amount of pollution entering the vehicle cabin through the HVAC(heating, ventilating, and air conditioning) system by sending a signal to close the fresh air inlet door/ventilation flap when the vehicle enters a high pollution area. The sensor module which includes two independent sensing elements for responding to diesel and gasoline exhaust gases, and temperature sensor and humidity sensor was designed for intelligent AQS in automobile. With this sensor module, AVR microcontroller was designed with back propagation neural network to a powerful gas/vapor pattern recognition when the motor vehicles pass a pollution area. Momentum back propagation algorithm was used in this study instead of normal backpropagation to reduce the teaming time of neural network. The signal from neural network was modified to control the inlet of automobile and display the result or alarm the situation in this study. One chip microcontroller, ATmega 128L(ATmega Ltd., USA) was used for the control and display. And our developed system can intelligently reduce the malfunction of AQS from the dampness of air or dense fog with the backpropagation neural network and the input sensor module with four sensing elements such as reducing gas sensing element, oxidizing gas sensing element, temperature sensing element and humidity sensing element.

증착방법에 따른 $NO_x$가스 감지용 $WO_3$박막센서의 특성 변화 연구 (The Sensing Characteristics of $WO_3$ Thin Films for $NO_x$ Gas Detection with the Change of Deposition Methods)

  • 김태송;김용범;유광수;성기숙;정형진
    • 한국세라믹학회지
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    • 제34권4호
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    • pp.387-393
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    • 1997
  • In order to apply WO3 thin films to the semiconducting NOx gas sensors as a sensing material, which have been expected to show good electrical properties, such as large sensitivity, rapid responsibility, and high selectivity, the fabrication method and their sensing characteristics were studied. The variations of surface morphologies, crystallographic orientations and crystallinity with the WO3 thin film growing methods thermal evaporation and DC sputtering methods were investigated by using scanning electron microscopy (SEM) and X-ray diffraction(XRD) analysis. As a result of sensitivity (Rgas/Rair) measurements for the 5 ppm NO2 test gas, the sensitivity values were 113 for the sputtered films and 93 for the evaporated films. It was also observed that the recovery rate of a sensing signal after measuring sensitivity was faster in the sputtered films than in the evaporated films.

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반도체 탄소 나노재료 기반 상온 동작용 가스센서 (Sensing performances of Semiconducting Carbon Nanomaterials based Gas Sensors Operating at Room Temperature)

  • 최선우
    • 세라미스트
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    • 제22권1호
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    • pp.96-106
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    • 2019
  • Semiconducting carbon-based nanomaterials including single-walled carbon nanotubes(SWCNTs), multi-walled CNT(MWCNTs), graphene(GR), graphene oxide(GO), and reduced graphene oxide(RGO), are very promising sensing materials due to their large surface area, high conductivity, and ability to operate at room temperature. Despite of these advantages, the semiconducting carbon-based nanomaterials intrinsically possess crucial disadvantages compared with semiconducting metal oxide nanomaterials, such as relatively low gas response, irreversible recovery, and poor selectivity. Therefore, in this paper, we introduce a variety of strategies to overcome these disadvantages and investigate principle parameters to improve gas sensing performances.

저전력 신호 추출 기법이 내장된 가스 센서 시스템 개발 (Development of a Gas Sensor System with Built-in Low-power Signal Extraction Technique)

  • 현장수;김현준
    • 센서학회지
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    • 제32권2호
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    • pp.105-109
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    • 2023
  • In this study, we present a power-efficient driving method for gas sensor systems based on the analysis of input signal characteristics. The analysis of the gas sensor output signal characteristics in the frequency domain shows that most of the signal portions are distributed in a relatively low frequency region when extracting the gas sensor signal, which can lead to further performance improvement of the gas sensor system. Therefore, the proposed gas signal extracting technique changes the operating frequency of the read-out circuit based on the frequency characteristics of the output signal of the gas sensor, resulting in a reduction of power consumption at the whole system level. The proposed sensing technique, which can be applied to a general-purpose commercial gas sensor system, was implemented in a printed circuit board (PCB) to verify its effectiveness at the commercial level.

다이아프램 구조를 이용한 탄소나노튜브 가스 센서의 가스 감응 특성 (Gas sensing characteristics of carbon nanotube gas sensor using a diaphragm structure)

  • 조우성;문승일;김영조;박정호;주병권
    • 센서학회지
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    • 제15권1호
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    • pp.13-19
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    • 2006
  • The micro-gas sensor based on carbon nanotubes (CNTs) was fabricated and its gas sensing characteristics on nitrogen dioxide ($NO_{2}$) have been investigated. The sensor consists of a heater, an insulating layer, a pair of contact electrodes, and CNT-sensing film on a micromachined diaphragm. The heater plays a role in the temperature change to modify sensor operation. Gas sensor responses of CNT-film to $NO_{2}$ at room temperature are reported. The sensor exhibits a reversible response with a time constant of a few minutes at thermal treatment temperature of $130^{\circ}C$.

Fabrication of H2 Gas Sensor Based on ZnO Nanarod Arrays by a Sonochemical Method

  • Lee, Mi-Sun;Oh, Eu-Gene;Jeong, Soo-Hwan
    • Bulletin of the Korean Chemical Society
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    • 제32권10호
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    • pp.3735-3737
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    • 2011
  • We report a simple method for fabricating ZnO gas sensors via a sonochemical route and their $H_2$ gas sensing properties. Vertically aligned ZnO nanorod arrays as a sensing material were synthesized on a Pt-electrode patterned alumina substrate under ambient conditions. The advantage of the proposed method is a high speed of processing. The gas sensor based on ZnO nanorod arrays with large specific surface area showed a high response to $H_2$ and a detection limit of 70 ppm at $250^{\circ}C$. Also, their response and recovery time were relatively short and a complete regeneration was observed. A mechanism for sensing $H_2$ gas on the surface of ZnO nanorods is proposed.

PVC 및 GC물질의 혼합액을 코팅한 QCM가스센서의 센싱 및 열화특성 (Sensing and Degradation Properties in the QCM Gas Sensor Coated with the PVC and GC Blended Liquid)

  • 장경욱;김명호;이준웅
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2000년도 하계학술대회 논문집
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    • pp.483-486
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    • 2000
  • In the recognition of the gases using the quartz crystal rnicrobalance (QCM) coated with the film materials, it is important to obtain the recognition ability of gases, and the stability of film coated above the QCM. Especially, the thickness of film coated above the QCM is decreased according with the using circumstance and time of QCM gas sensor. Therefore, the sensing chararcteristics of film is changed with these. In this paper, we coated the lipid GC materials varing with the blended amount of PVC(Po1y Vinyl Chloride) and solution (Tetra Hydrofan:THF) above QCM to obtain the stability of lipid PC film. QCM gas sensors coated with film materials were measured the frequency change in the chamber of stationary gas sensing system injected 1-hexane, ethyl acetate, ethanol and benzene of 20.4 respectively. Also, we measured the degradation characteristics of QCM gas sensor to show the properties of stability.

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Electrospun Metal Oxide Composite Nanofibers Gas Sensors: A Review

  • Abideen, Zain Ul;Kim, Jae-Hun;Lee, Jae-Hyoung;Kim, Jin-Young;Mirzaei, Ali;Kim, Hyoun Woo;Kim, Sang Sub
    • 한국세라믹학회지
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    • 제54권5호
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    • pp.366-379
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    • 2017
  • Nanostructured materials have attracted considerable research interest over the recent decades because of their potential applications in nanoengineering and nanotechnology. On the other hand, the developments in nanotechnology are strongly dependent on the availability of new materials with novel and engineered morphologies. Among the novel nanomaterials reported thus far, composite nanofibers (NFs) have attracted considerable attention in recent years. In particular, metal oxide NFs have great potential for the development of gas sensors. Highly sensitive and selective gas sensors can be developed by using composite NFs owing to their large surface area and abundance of grain boundaries. In composite NFs, gas sensing properties can be enhanced greatly by tailoring the conduction channel and surface properties by compositional modifications using the synergistic effects of different materials and forming heterointerfaces. This review focuses on the gas sensing properties of composite NFs synthesized by an electrospinning (ES) method. The synthesis of the composite NFs by the ES method and the sensing mechanisms involved in different types of composite NFs are presented along with the future perspectives of composite NFs.

CO Gas-Sensor Based on Pt-Functionalized Mg-Doped ZnO Nanowires

  • Jin, Chang-Hyun;Park, Sung-Hoon;Kim, Hyun-Su;An, So-Yeon;Lee, Chong-Mu
    • Bulletin of the Korean Chemical Society
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    • 제33권6호
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    • pp.1993-1997
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    • 2012
  • Mg-doped ZnO one-dimensional (1D) nanostrutures were synthesized by using a thermal evaporation technique. The morphology, crystal structure, and sensing properties of the Mg-doped ZnO nanostructures functionalized with Pt to CO gas at $100^{\circ}C$ were examined. The diameters of the 1D nanostructures ranged from 80 to 120 nm and that the lengths were up to a few tens of micrometers. The gas sensors fabricated from multiple networked Mg-doped ZnO nanowires functionalized with Pt showed enhanced electrical response to CO gas. The responses of the nanowires were improved by approximately 70, 69, 111, and 81 times at CO concentrations of 10, 25, 50, and 100 ppm, respectively. Both the response and recovery times of the nanowire sensor for CO gas sensing were not nearly changed by Pt functionalization. It also appeared that the Mg doping concentration did not influence the sensing properties of ZnO nanowires as strongly as Pt-functionalization. In addition, the mechanism for the enhancement in the CO gas sensing properties of Mg-doped ZnO nanowires by Pt functionalization is discussed.