DOI QR코드

DOI QR Code

Fabrication of the CNT-FET biosensors with a double-gate structure

더블 게이트 구조의 탄소 나노 튜브 트랜지스터 바이오 센서의 제작

  • Cho, Byung-Hyun (School of Electrical Engineering and Computer Science, Kyungpook National University) ;
  • Lim, Byoung-Hyun (School of Electrical Engineering and Computer Science, Kyungpook National University) ;
  • Shin, Jang-Kyoo (School of Electrical Engineering and Computer Science, Kyungpook National University) ;
  • Choi, Sung-Wook (Korea Food Research Institute) ;
  • Chun, Hyang-Sook (Korea Food Research Institute)
  • 조병현 (경북대학교 전자전기컴퓨터학부) ;
  • 임병현 (경북대학교 전자전기컴퓨터학부) ;
  • 신장규 (경북대학교 전자전기컴퓨터학부) ;
  • 최성욱 (한국식품연구원) ;
  • 전향숙 (한국식품연구원)
  • Published : 2009.03.31

Abstract

In this paper, we present the carbon nanotube field-effect transistor(CNT-FET) with a double-gate structure. A Carbon nanotube film was aligned by the Langmuir-Blodgett technique and $SiN_x$ was deposited to protect from water, oxygen, and other contaminants. We measured the electrical characteristics of the proposed device as the function of the $V_{BG}$, $V_{TG}$. From this result, we can confirm that proposed device might be employed as a biosensor.

Keywords

References

  1. S. J. Tans, A. R. M. Verschueren and C. Decker, 'Room-temperature transistor based on a single carbon nanotube', Nature, vol. 393, pp. 49-52, 1998 https://doi.org/10.1038/29954
  2. M. Abe, K. Murata, A. Kojima, Y. Ifuku, M. Shimizu, T. Ataka, and K. Matsumoto, 'Quantiatatve detection of protein using a top-gate carbon nanotube field effect transistor', J. Phys. Chem. C, vol. 111, pp. 8667-8670, 2007 https://doi.org/10.1021/jp071420e
  3. D. Piscevic, W. Knoll, and M. J. Tarlov, 'Surface plasmon mircroscopy of biotin-streptavidin binding reactions on UV-photopatterned alkanthiol selfassembled monolayers', Superamolecular Science, vol 2, pp. 99-106, 1995 https://doi.org/10.1016/0968-5677(96)89074-2
  4. H. Zhu, M. Bilgin, R. Bangham, D. Hall, A. Casamayer, P. Bertone, N. Lan, R. Jansen, S. Bidlingmaier, T. Houfek, T. Mitchell, P. Miller, R. A. Dean, M. Gerstein, and M. Snyder, 'Global analysis of protein activities using proteome chip', Science, vol. 293, pp. 2101-2105, 2001 https://doi.org/10.1126/science.1062191
  5. C. B. Yuan, A. Chen, P. Kolb, and V. T. Moy, 'Energy landscape of streptavidin-biotin complexes meaured by atomic force microscopy', Biochemistry, vol. 39, pp. 10219-10223, 2000 https://doi.org/10.1021/bi992715o
  6. 박지은, 김동선, 최호진, 신장규, 김판겸, 임근배, 'AFM을 이용한 스트렙타비딘-바이오틴 단백질 복합체의 흡착 분석', 센서학회지, 제15권, 제4호, pp. 237-244, 2006 https://doi.org/10.5369/JSST.2006.15.4.237
  7. 박혜정, 김동선, 한대일, 신장규, 최평, '스렙타비딘- 바이오틴 단백질 복합체 검출을 위한 PMOSFET형 바이오센서', 한국센서학회 종합학술대회 논문집, pp. 151-152, 2003
  8. AIST. http://www.aist.go.jp/aist_e/latest_research/2006/20060608/20060608.html
  9. P. Ramirez 'Carbon nanotube for science and technology', Bell Labs Technical Journal 10(3), pp. 171-185, 2005 https://doi.org/10.1002/bltj.20112
  10. 이완성, '단일벽 탄소 나노 튜브 Langmuir-Blodgett 막의 특성평가 및 응용', 아주대학교 석사학위 논문, p. 1, 2007
  11. D. Kaminishi, H. Ozaki, Y. Ohno. K. Maehashi, K. Inoue, and K. Matsumoto, 'Air-stable n-type carbon nanotube field-effect transistor with Si3N4 passivation films fabricated by catalytic chemical vapor deposition', Applied Physics Letters 86, 113115, 2005
  12. K. Maehashi, Y. Ohno, K. Inoue, K. Matsumoto, T. Niki and H. Matsumura, 'Electrical characterization of carbon nanotube field-effcet transistors with SiNx passivation films deposited by catalytic chemical vapor deposition'. Applied Physics Letters 92, 183111, 2008 https://doi.org/10.1063/1.2920206