화학공학소재연구정보센터
Korean Journal of Materials Research, Vol.17, No.5, 278-282, May, 2007
전기방사에 의한 PAN 나노섬유의 제조특성
Characterization of Polyacrylonitrile Nanofibers by Electrospinning
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Polyacrylonitrile nanofibers were fabricated by co-electrospinning technique and were characterized using scanning electron microscopy(SEM). We have evaluated systematically the effects of the important processing parameters affected on the morphology of the formed fibers; voltage, solution concentration and tip to collector distance. PAN nanofibers of about 200 nm2500 nm in diameter were well fabricated at the polymer concentration of 7.5 wt%15 wt%. It has been found that the average diameter of PAN nanofibers increased with increasing the concentration of PAN solution due to the reduction of whipping and splitting for the high viscosity solution. we also found an evidence that the applied voltage is strongly correlated with the distribution of nanofibers and the uniformed size of nanofibers were obtained at electrostatic value of 1 kV/cm.
  1. Frenot A, Chronakis IS, Current Opinion in colloid and interface science, 8, 64 (2003)
  2. Huang ZM, Zhang YZ, Kotaki M, Ramakrishna S, Composites Science and Technology, 63, 2223 (2003)
  3. Hou HQ, Reneker DH, Adv. Mater., 16(1), 69 (2004)
  4. Dror Y, Salalha W, Khalfin RL, Cohen Y, Yarin AL, Zussman E, Langmuir, 19(17), 7012 (2003)
  5. Shao C, Kim HY, Gong J, Ding B, Lee DR, Park SJ, Materials Letters, 57, 1579 (2003)
  6. Zeng J, Xu X, Chen X, Liang Q, Bian X, Yang L, Jing X, J. Controlled Release, 92, 227 (2003)
  7. Yang F, Murugan R, Wang S, Ramakrishna S, Biomaterials, 26, 2603 (2005)
  8. Yoshimoto H, Shin YM, Terai H, Vacanti JP, Biomaterials, 24, 2077 (2003)
  9. Guan H, Shao C, Chen B, Gong J, Yang X, Inorganic Chemistry Communications, 6, 1409 (2003)
  10. Guan HY, Shao CL, Wen SB, Chen B, Gong J, Yang XH, Mater. Chem. Phys., 82(3), 1002 (2003)
  11. Zong XH, Kim K, Fang DF, Ran SF, Hsiao BS, Chu B, Polymer, 43(16), 4403 (2002)
  12. Pawlowski KJ, Belvin HL, Raney DL, Su J, Harrison JS, Siochi EJ, Polymer, 44(4), 1309 (2003)
  13. Ohgo K, Zhao CH, Kobayashi M, Asakura T, Polymer, 44(3), 841 (2003)
  14. Li D, Xia YN, Adv. Mater., 16(14), 1151 (2004)
  15. Theron SA, Zussman E, Yarin AL, Polymer, 45(6), 2017 (2004)
  16. Sukigara S, Gandhi M, Ayutsede J, Micklus M, Ko F, Polymer, 44(19), 5721 (2003)
  17. Reneker DH, Kataphinan W, Theron A, Zussman E, Yarin AL, Polymer, 43(25), 6785 (2002)
  18. Deitzel JM, Kleinmeyer J, Harris D, Tan NCB, Polymer, 42(1), 261 (2001)
  19. Lyons J, Li C, Ko F, Polymer, 45(22), 7597 (2004)
  20. Wu XH, Wang LG, Yu H, Huang Y, J. Appl. Polym. Sci., 97(3), 1292 (2005)
  21. Shin YM, Hohman MM, Brenner MP, Rutledge GC, Polymer, 42(25), 9955 (2001)
  22. Tan SH, Inai R, Kotaki M, Ramakrishna S, Polymer, 46(16), 6128 (2005)
  23. Fong H, Chun I, Reneker DH, Polymer, 40(16), 4585 (1999)
  24. Huang ZM, Zhang YZ, Ramakrishna S, Lim CT, Polymer, 45(15), 5361 (2004)