Article
  • Synthesis and Physical Properties of Polycaprolactone Based Polyurethanes Using Aliphatic or Aromatic Diisocyanates
  • Kim SM, Kwak NS, Yang YK, Yim BK, Park BY, Hwang TS
  • 지방족 및 방향족 이소시아네이트를 이용한 폴리카프로락톤계 폴리우레탄의 합성 및 물성 연구
  • 김선미, 곽노석, 양윤규, 임봉균, 박보영, 황택성
Abstract
Polyurethanes, synthesized by polyester polyols and aliphatic or aromatic diisocyanates for a crease resist finishing agent, were prepared by two-step reactions, that is, prepolymer synthesis and chain extension. The structures of synthesized polyurethanes were confirmed by the measurement of FT-IR and 1H-NMR spectrometer. The number average molecular weight (Mn) and the weight average molecular weight (Mw) of the polyurethane with aromatic diisocyanate(MDI) were higher than those of the synthesized polyurethanes with aliphatic diisocyanate( HDI, H12MDI). The glass transition temperature (Tg) of soft segments in polyurethanes with MDI, HDI, H12MDI were -25, -42 and -50 ℃, respectively. In the polyurethanes obtained by two-step reaction, thermal stability and tensile strength increased with increasing hard segment contents, whereas elongation at break decreased with increasing hard segment contents.

본 연구에서는 섬유의 구김을 방지하기 위해 첨가제인 폴리우레탄을 2단계 중합반응을 통하여 합성하였으며, 단계 반응 중합체의 구조와 합성된 폴리우레탄의 구조를 FT-IR과 1H-NMR 스펙트럼으로 확인하였다. 방향족 이소시아네이트인 4,4-diphenylmethane diisocyanate(MDI)로 합성한 폴리우레탄의 평균 분자량이 지방족 이소시아네이트인 hexamethylene diisocyanate(HDI), 4,4-dicyclohexylmethane diisocyanate(H12MDI)로 합성한 폴리우레탄의 분자량보다 크게 증가하였다. 또한 MDI, HDI, H12MDI로 합성한 폴리우레탄의 유리전이온도(Tg)는 각각 -25, -42, -50 ℃로 나타났다. 합성 폴리우레탄의 경질부분 함량이 증가함에 따라 열 안정성과 인장강도는 증가하였고, 파괴점에서의 연신율은 감소하였다.

Keywords: aromatic and aliphatic diisocyanates; hard segment content

References
  • 1. Vertel GPolyurethane, 2nd ed., Hanser Pub., New York (1994)
  •  
  • 2. Oertel GPolyurethane Handbook, Haser, Cincinnati (1994)
  •  
  • 3. Patel P, Suthar BP, Macromol. Chem., 29, 156 (1988)
  •  
  • 4. Cowie JMG, Wu HH, Polymer, 29, 934 (1988)
  •  
  • 5. Tang YW, Santerre JP, Labow RS, Taylor DG, J. Appl. Polym. Sci., 62(8), 1133 (1996)
  •  
  • 6. Tonelli C, Trombetta T, Scicchitano M, Castiglioni G, J. Appl. Polym. Sci., 57(9), 1031 (1995)
  •  
  • 7. Lan PN, Corneillie S, Schaacht E, Davies M, Shard A, Biomaterials, 17, 2273 (1996)
  •  
  • 8. Li FK, Zhang X, Hou JN, Xu M, Lu XL, Ma DZ, Kim BK, J. Appl. Polym. Sci., 64(8), 1511 (1997)
  •  
  • 9. Huh JH, Kim TW, Kim EY, Kim HD, J. Res. Inst. Ind. Tech., 51, 199 (1996)
  •  
  • 10. Saxena PK, Raut KG, Srinivasan SR, Sivaram S, Rawat RS, Jain RK, Constr. Build. Mater., 5, 208 (1991)
  •  
  • 11. Boxhammer J, Polym. Test, 20, 719 (2001)
  •  
  • 12. Jeong HM, Kim BK, Choi YJ, Polymer, 41(5), 1849 (2000)
  •  
  • 13. David Dj, Staley HBAnalytical Chemistry of Polyurethane, Wiley Interscience, New York (1969)
  •  
  • 14. Kim SM, Kang YU, Yang YK, Kwak HS, Cho IS, Park JW, Hwang TS, J. Korean Ind. Eng. Chem., 15(5), 537 (2004)
  •  
  • 15. Kim KH, Ha KJ, Wu JP, Park HS, Kwon KS, Korea J. Oil Fat Chem., 1, 29 (1998)
  •  
  • 16. Lee DJ, Kim HD, J. Korean Fiber Soc., 36, 873 (1999)
  •  
  • 17. Kim HJPlastic Materials [2] : Polyurethane Resin, Dae-Kwang Pub., Seoul (1979)
  •  
  • 18. Doyle CD, Angew. Chem., 33, 77 (1961)
  •  
  • 19. Pandya MV, Deshpande DD, Hundiwale DG, J. Appl. Polym. Sci., 32, 4959 (1986)
  •  
  • 20. Kwei TK, J. Appl. Polym. Sci., 27, 2891 (1982)
  •  
  • 21. Seefried CG, Koleske JV, Critchfield FE, J. Appl. Polym. Sci., 19, 2493 (1975)
  •  
  • 22. Ahn TO, Hong IP, Kim JH, Jeong HM, Polymer, 14, 608 (1990)
  •  
  • 23. Hepbum CPolyurethane Elsotomers, Applied Science Pub., London and New York (1982)
  •  
  • 24. Yang JH, Chun BC, Chung YC, Cho JH, Polymer, 44(11), 3251 (2003)
  •  
  • Polymer(Korea) 폴리머
  • Frequency : Bimonthly(odd)
    ISSN 0379-153X(Print)
    ISSN 2234-8077(Online)
    Abbr. Polym. Korea
  • 2022 Impact Factor : 0.4
  • Indexed in SCIE

This Article

  • 2005; 29(3): 253-259

    Published online May 25, 2005

  • Received on Dec 29, 2004
  • Accepted on Apr 19, 2005