화학공학소재연구정보센터
Polymer(Korea), Vol.33, No.6, 588-595, November, 2009
전자선 조사에 의해 상용화된 PLA/PCL 블렌드의 모폴로지 및 유변학적 성질
Morphology and Rheological Property of PLA/PCL Blend Compatibilized by Electron Beam Irradiation
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초록
본 연구의 목적은 기능성 단량체인 glycidyl methacrylate(GMA)와 전자선을 이용하여 비혼화성 poly(lactic acid)(PLA)/polycaprolactone (PCL) 블렌드의 상용성을 높이고자 하는 것이다. GMA를 포함하는 PLA/PCL 블렌드에 10, 50, 100 kGy의 전자선을 조사하여 시료를 제조한 후 모폴로지 및 유변학적 물성을 조사하였다. 50과 100 kGy로 조사된 블렌드는 크게 변화된 계면 형상을 보였고, 복합점도와 저장탄성률 또한 전자선을 조사하지 않은 블렌드에 비해 크게 증가하였다. 특히 100 kGy로 조사된 PLA/PCL(9/1) 블렌드의 복합점도는 순수 PLA보다 약 100배 가까운 증가를 보였다. 기능성 단량체 첨가와 적절한 전자선 조사로 비혼화성 PLA/PCL 블렌드의 상용성을 증가시킬 수 있었다.
The aim of this study was to increase compatibility of immiscible PLA/PCL blend by using electron beam irradiation in the presence of glycidyl methacrylate(GMA). The blends of PLA/PCL containing GMA were irradiated at doses of 10, 50 and 100 kGy and then the irradiated samples were characterized by observing morphology and rheological properties. Blends irradiated with 50 and 100 kGy showed greatly improved interfacial adhesion between two phases in the morphology. Complex viscosity of PLA/PCL(9/1) blend irradiated at dose of 100 kGy was about 100 times higher than that of pure PLA. We found that the compatibility of immiscible PLA/PCL could be improved by electron beam irradiation in the presence of GMA from the investigation of morphology and rheology.
  1. Narayan R, "Rationale, Drivers, and Technology Examples", in Biobased & Biodegradable Polymer Materials, Khemmani KC, Scholz C, Editors, ACS, Washington DC (2006)
  2. Han K, Kang HJ, Polym.(Korea), 22(4), 596 (1998)
  3. Min Y, Lee S, Park JK, Cho KY, Sung SJ, Macromol. Res., 16(3), 231 (2008)
  4. David SB, Geyer JD, Gustafson A, Snook J, Narayan R, "Biodegradation and Composting Studies of Polymeric Materials", in Biodegradable Plastics and Polymers, Doi Y, Fukuda K, Editors, Elsevier, Osaka, p 601 (1993)
  5. Lee JR, Chun SW, Kang HJ, Polym.(Korea), 27(4), 285 (2003)
  6. Carlson D, Dubois P, Nie L, Narayan R, Polym. Eng. Sci., 38(2), 311 (1998)
  7. Harada M, Lida K, Okamoto K, Hayashi H, Hirano K, Polym. Eng. Sci., 48, 1359 (2008)
  8. Simoes CL, Viana JC, Cunha AM, J. Appl. Polym. Sci., 112, 345 (2009)
  9. Wu D, Zhang Y, Zhang M, Zhou W, Eur. Polym. J., 44, 2171 (2008)
  10. Paul DR, Bucknall CB, Polymer Blends, Wiely, New York (2000)
  11. Utracki LA, Polymer Alloys and Blends, Hanser, Munich (1989)
  12. Aslan S, Calandrelli L, Laurienzo P, Malinconico M, Migliaresi C, J. Mater. Sci., 35(7), 1615 (2000)
  13. Maglio G, Malinconico M, Migliozzi A, Groeninckx G, Macromol. Chem. Phys., 205, 946 (2004)
  14. Baker W, Scott C, Gu GH, Reactive Polymer Blending, Hanser, Munich (2001)
  15. Lee MJ, Lee MC, Shin PK, Polym.(Korea), 22(1), 93 (1998)
  16. Lee S, Lee Y, Lee JW, Macromol. Res., 15(1), 44 (2007)
  17. Ko BS, Shin JH, Sohn JY, Nho YC, Kang PH, Polym.(Korea), 33(3), 268 (2009)
  18. Park KR, Nho YC, Polym.(Korea), 29(1), 91 (2005)
  19. Kim JI, Park SH, Kang PH, Nho YC, Polym.(Korea), 25(5), 657 (2001)
  20. Cho IH, Kang PH, Lim YM, Choi JH, Hwang TS, Nho YC, Polym.(Korea), 31(6), 512 (2007)
  21. Nho YC, Garnett JL, Dworjanyn PA, Pyun HC, Polym.(Korea), 16(1), 115 (1992)
  22. Pyun HC, Nho YC, Polym.(Korea), 15(4), 425 (1991)
  23. Hassan MM, Polym. Eng. Sci., 48(2), 373 (2008)
  24. Zhu G, Xu S, Wang J, Zhang L, Rad. Phys. Chem., 75, 443 (2006)
  25. Kodama Y, Machado LDB, Giovedi C, Nakayama K, Nucl. Instr. Meth. in Phys. Reser. B, 265, 294 (2007)
  26. Woods RJ, Pikaev AK, Applied Radiation Chemistry Radiation Processing, John Wiely, New York (1994)
  27. Meister JJ, Polymer Modification: Principles, Techniques, and Applications, Marcell Dekker, New York (2000)
  28. Leonard DJ, Pick LT, Farrar DF, Dickson GR, Orr JF, Buchanan FJ, J. Biomed. Mater. Res. -A, 89, 567 (2009)
  29. Gupta MC, Deshmukh VG, Polymer, 24, 827 (1983)
  30. Shin BY, Kang KS, Jo GS, Han DH, Song JS, Lee SI, Lee TJ, Kim BS, Polym.(Korea), 31(3), 269 (2007)
  31. Darwis D, Nishimura K, Mitomo H, Yoshii F, J. Appl. Polym. Sci., 74(7), 1815 (1999)
  32. Yoshii F, Darwis D, Mitomo H, Makuuchi K, Rad. Phys. Chem., 57, 417 (2000)
  33. Lee HM, Park OO, J. Rheol., 38(5), 1405 (1994)
  34. Shin BY, Narayan R, Han DH, Kang KS, Chalasani SRKC, "Rheological Properties of PLA Modified by Electron Beam Irradiation", in Frontiers in Polymer Science, International Symposium, 7-9 June 2009, Congress Centrum Mainz, Germany.
  35. Jeong BJ, Xanthos M, Polym. Eng. Sci., 47(3), 244 (2007)
  36. Wild L, Ranganath R, Knobeloch DC, Polym. Eng. Sci., 16, 811 (1976)
  37. Parmar HB, Gupta RK, Bhattacharya SN, Polym. Eng. Sci., in print (2009)
  38. Wang R, Wang S, Zhang Y, Wan C, Ma P, Polym. Eng. Sci., 49, 26 (2009)
  39. Zhang Y, Wu D, Zhang M, Xu C, Polym. Eng. Sci., in print (2009)
  40. Kim ES, Kim BC, Kim SH, J. Polym. Sci. B: Polym. Phys., 42(6), 939 (2004)
  41. Liu Y, Huang Y, Zhang C, Hou J, Zhang X, Polym. Eng. Sci., in print (2009)