형판 합성된 $PbTiO_{3}$ 나노-구조의 상전이

Phase Transitions of Template Synthesized $PbTiO_{3}$ Nano-structures

  • ;
  • 부상돈 (전북대학교 물리학과) ;
  • ;
  • ;
  • Chang, Ki-Seog (Department of Chemistry, Korea Air Force Academy) ;
  • Bu, Sang-Don (Department of Physics, Chonbuk National University) ;
  • Hernandez Bernadez A. (Department of Chemistry, Colorado State University) ;
  • Fisher Ellen R. (Department of Chemistry, Colorado State University) ;
  • Dorbout Peter K. (Department of Chemistry, Colorado State University)
  • 발행 : 2005.12.31

초록

졸-겔 형판 합성법으로 제조된 페롭스카이트 나노구조의 입자크기에 따른 상전이를 연구하였다. 타탄산납, $PbTiO_{3}$, 화합물의 나노구조는 출발물질인 티타늄 테트라부톡사이드($Ti(OBu)_{4}$)와 아세트산 납($Pb(OAc)_{2}-3H_{2}O$)을 선택된 용매에 녹이고, 산화 알루미늄 형판($AlO_{x}\;template$)을 이용한 졸-겔 합성과정으로 거쳐서 제조하였다. 이 때, 200-nm 직경의 세공을 가진 막($Whatman^{\circledr}\;anodisc\;membranes$)이 형판으로 이용되었다. 선구물질이 코팅된 형판을 공기 중에서 말린 후, $650^{\circ}C$에서 소결하고, 6M-NaOH 용액에서 형판을 제거하였다. $PbTiO_{3}$ 나노구조의 상전이는 DSC, DTA, 비선형 광학적 특성 등을 이용하여 조사하였다.

We report on the phase transitions of the perovskite nanostructures made by sol-gel template synthesis. The lead titanate ($PbTiO_{3}$) nanostructures were prepared with a chelate sol-gel of titanium tetrabutoxide ($Ti(O^{i}Pr){4}$) and lead acetate ($Pb(OAc)_{2}-3H_{2}O$). $Whatman^{\circledr}$ anodisc membranes (with about 200 nm pore size) served as the template. The template was dipped into the sol, allowed to air dry, and then calcined at $650^{\circ}C$. We have characterized the temperatures of the phase transitions in the $PbTiO_{3}$ nano-structures using DSC, DTA, and second harmonic generation (SHG).

키워드

참고문헌

  1. 장지근, 임성규, 장호연, 'Piezoeletric Ceramics 메모리 커패시터용 Pb(ZrxT(1-x)$O_3$ 강유전체 박막의 제작과 특성', 집문당 (1971)
  2. Jaffe, B., Cook, W. R-. and Jaffe, H., 'Piezoeletric Ceramics', Academic Press (1971)
  3. Noheda, B., et al., Jona, Appl. Phys. Lett., 74, 2059 (1962)
  4. Mitsui, T., Tatsuzakai, I. and Nakamura, E., Eds. An Introduction to the Physics of Ferroelectrics; Gordon and Breach Science Publishers: New York (1976)
  5. Akdogan, E. K., Leonard, M. R. and Safari, A., Size Effects in Ferroelectric ceramics; Nawala, H. S., Eds.; Handbook of Low and High Dielectric Constant Materials, Vol.; Academic Press: San Diego, 61 (1999)
  6. Jona, F. and Shirane, G. Ferroelectric Crystals; MacMillan: New York (1962)
  7. Sharma, H. B. and Mansingh, A., J. Mater. Sci., 33, 4455-4459 (1998) https://doi.org/10.1023/A:1004576315328
  8. Hernandez, B. A., Chang, K. S., Fisher, E. R. and Dorhout, P. K., Chem. Mater., 14 & 17, 480. & 5909 (2002 & 2005)
  9. Hernandez, B. A., Chang, K. S., Fisher, E. R. and Dorhout, P. K., Chem. Mater., 14 & 17, 480. & 5909 (2002 & 2005)
  10. Chang, K. S., Hernandez, B. A., Fisher, E. R. and Dorhout, P. K., J. Kor. Chem. Soc., 46(3), 242 (2002)
  11. Cullity, B. D., Elements of X-Ray Diffraction; Addison-Wesly: Massachuesetts (1978)
  12. Asiaie, R., Zhu, W., Akbar, S. A. and Dutta, P. K., Chem. Mater., 8, 226-234 (1996) https://doi.org/10.1021/cm950327c
  13. Golego, N., Studenikin, S. A. and Cocivera, M., Chem. Mater., 10, 2000-2005 (1998) https://doi.org/10.1021/cm980153+
  14. Yukawa, K. and Wakino, K., Interg. Ferroelect., 20, 107-115 (1998) https://doi.org/10.1080/10584589808238774
  15. Ma, Y., Vileno, E., Suib, S. and Dutta, P. K., Chem. Mater., 9, 3023-3031 (1997) https://doi.org/10.1021/cm970371n
  16. Lubrosky, F. E., J. Appl. Phys., 32, 171S (1961) https://doi.org/10.1063/1.1736145
  17. Weissmuller, J. In Nanomaterials: Synthesis, Properties and Applications; Cammarata, A. S. E. a. R. C., Ed.; Institute of Physics Publishing: London, 266 (1996)
  18. Ishikawa, K., Yoshikawa, K. and Okada, K., Phys. Rev. B, 37(10), 5852-5855 (1988) https://doi.org/10.1103/PhysRevB.37.5852
  19. Zhang, W. L., Jiang, B., Zhang, P. L., Ma, J. M., Cheng, H. M., Yang, Z. H. and Li, Z. H., J. Phys.: Condens. Matter, 5, 2619-2624 (1993) https://doi.org/10.1088/0953-8984/5/16/018
  20. Franken, P., Hill, A., Peters, C. and Weinreich, G., Phys. Res. Lett., 7, 118 (1961)
  21. Kurtz, S. W. and Perry, T. T., J. App. Phys., 39, 3798 (1968)
  22. Chang, K. S. and Bu, S. D., J. Kor. Instit. Mil. Sci. Tech., in press (2005)
  23. Goldstein, A. N., Echer, C. M. and Alivisatos, A. P., Science, 256, 1425-1427 (1992) https://doi.org/10.1126/science.256.5062.1425