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LTCC 를 이용한 SnO2 가스 센서

[ SnO2 ] Gas Sensors Using LTCC (Low Temperature Co-fired Ceramics)

  • 조평석 (고려대학교 신소재공학과) ;
  • 강종윤 (한국과학기술연구원 박막재료연구센터) ;
  • 김선중 (고려대학교 신소재공학과) ;
  • 김진상 (한국과학기술연구원 박막재료연구센터) ;
  • 윤석진 (한국과학기술연구원 박막재료연구센터) ;
  • ;
  • 이종흔 (고려대학교 신소재공학과)
  • Cho, Pyeong-Seok (Department of Materials Science and Engineering, Korea University) ;
  • Kang, Chong-Yun (Thin Film Materials Research Center, Korea Institute of Science and Technology) ;
  • Kim, Sun-Jung (Department of Materials Science and Engineering, Korea University) ;
  • Kim, Jin-Sang (Thin Film Materials Research Center, Korea Institute of Science and Technology) ;
  • Yoon, Seok-Jin (Thin Film Materials Research Center, Korea Institute of Science and Technology) ;
  • Hieu, Nguyen Van (International Training Institute for Materials Science, Hanoi University of Technology) ;
  • Lee, Jong-Heun (Department of Materials Science and Engineering, Korea University)
  • 발행 : 2008.02.25

초록

A sensor element array for combinatorial solution deposition research was fabricated using LTCC (Low-temperature Co-fired Ceramics). The designed LTCC was co-fired at $800^{\circ}C$ for 1 hour after lamination at $70^{\circ}C$ under 3000 psi for 30 minutes. $SnO_2$ sol was prepared by a hydrothermal method at $200^{\circ}C$ for 3 hours. Tin chloride and ammonium carbonate were used as raw materials and the ammonia solution was added to a Teflon jar. 20 droplets of $SnO_2$ sol were deposited onto a LTCC sensor element and this was heat treated at $600^{\circ}C$ for 5 hours. The gas sensitivity ($S\;=\;R_a/R_g$) values of the $SnO_2$ sensor and 0.04 wt% Pd-added $SnO_2$ sensor were measured. The 0.04 wt% Pd-added $SnO_2$ sensor showed higher sensitivity (S = 8.1) compared to the $SnO_2$ sensor (S = 5.95) to 200 ppm $CH_3COCH_3$ at $400^{\circ}C$.

키워드

참고문헌

  1. J. W. Gardner, Trends Anal. Chem., 15, 486 (1996)
  2. C. D. Natale, F. Davide, A. D'Amico, Sensors and Actuators B, 23, 111 (1995) https://doi.org/10.1016/0925-4005(94)01279-2
  3. J. R. Engstrom and W. H.Weinberg, AIChE J., 46, 2 (2000) https://doi.org/10.1002/aic.690460102
  4. B. Wessler, V. Jehanno, W. Rossner, W. F. Maier, Appl. Surf. Sci., 223, 30 (2004) https://doi.org/10.1016/S0169-4332(03)00930-9
  5. B. D. Cullity and S. R. Stock, Elements of X-ray Diffraction, 3nd ed., p. 170, Prentice Hall, USA, (2001)
  6. T. Jinkawa, G. Sakai, J. Tamaki, N. Miura, N. Yamazoe, J. Molecular Catal. A, 155, 193 (2000) https://doi.org/10.1016/S1381-1169(99)00334-9
  7. T. Tsuboi, K. Ishii and S. Tamura, Nippon Kikai Gakkai Ronbunshu, B-hen, 67, 2797 (2001)