Applied Chemistry for Engineering, Vol.22, No.6, 679-684, December, 2011
분지형 폴리프로필렌/실리케이트 복합체의 유변학적 특성 연구
A Study on the Rheological Properties of Branched Polypropylene/silicate Composites
E-mail:
초록
고상(solid state) 반응과 용융(melt state) 반응을 이용하여 장쇄분지(long chain branch, LCB)를 가지는 분지화된 폴리프로필렌(branched polypropylene, LCB-PP)을 제조하였다. 분지제(branching agent)로는 divinylbenzene (DVB), 1,4-benzenediol (RES), furfuryl sulphide (FS)가, LCB-PP/실리케이트 복합체를 제조하기 위해서는 층상 실리케이트가 사용되었다. LCB-PP의 화학구조, 열적특성, 유변학적 특성을 적외선 분광기(FT-IR), 시차주사열용량분석기(DSC, TGA), 그리고 동적유변측정기 (ARES)를 이용하여 분석하였다. LCB-PP의 화학구조는 3100 cm^(-1)에서 나타나는 분지제의 =C-H 신축진동을 이용하여 확인하였다. DSC와 TGA의 결과로부터 고상반응보다 용융반응이 LCB-PP 제조에 보다 효과적이었고, 유변학적 특성을 통하여 추가 확인되었다. 분지제 중에서는 FS가 가장 효과적이었다. LCB-PP의 경우 낮은 전단속도 영역에서 점도와 shear thinning tendency가 증가하였고, G'-G'' plot으로부터 탄성특성의 증가와 LCB의 도입에 의한 용융상태의 불균일성(heterogeneousness)을 확인할 수 있었다. LCB-PP/실리케이트 복합체의 실리케이트 함량에 따른 유변학적 특성을 관찰하였다. 실리케이트의 함량이 5 wt%인 경우 면찰 담화(shear thinning)와 G'-G'' plot에서의 기울기변화가 가장 크게 나타났다.
Branched polypropylenes (LCB-PP) with a long chain branch were prepared by the solid-state and molt-state reaction. Divinylbenzene (DVB), 1,4-benzenediol (RES), and furfuryl sulphide (FS) were used as branching agents of fabricate LCB-PP/silicate composites. Chemical structures, thermal properties, and rheological properties of the LCB-PP were determined by FT-IR, DSC, TGA, and dynamic rheometer (ARES). The chemical structure of the LCB-PP was confirmed by
the existence of =C-H stretching peak of the branching agent at 3100 cm^(-1). From DSC and TGA results, the melting reaction was more effective than the solid state reaction in the manufacture of LCB-PP, which was additionally certified by rheological properties. Based on rheological properties, FS was the best for branching efficiency of PP. Compared to PP, LCB-PPs indicated an increase of complex viscosity in the low frequency and shear thinning tendency, and G'-G'' plot represented an increase in elasticity and the heterogeneousness in a melt state. Rheological properties of LCB-PP/silicate composites were observed with the silicate content. When 5 wt% silicate was added in LCB-PP, distinct changes in the shear thinning and the slope of G'-G'' plots were observed.
- Jung HW, Lee JS, Kim WN, Hyun JC, Korean J. Rheol., 8(2), 119 (1996)
- Li SZ, Xiao MM, Wei DF, Xiao HN, Hu FZ, Zheng AN, Polymer, 50(25), 6121 (2009)
- Li J, Zhou C, Gang W, Polymer Testing., 22, 217 (2003)
- Hong CK, Kim MJ, Oh SH, Lee YS, Nah C, J. Ind. Eng. Chem., 14(2), 236 (2008)
- Hong CH, Lee YB, Bae JW, Jho JY, Nam BU, Hwang TW, J. Ind. Eng. Chem., 11(1), 76 (2005)
- Kim YC, Lee CY, J. Korean Ind. Eng. Chem., 46, 106 (2008)
- Istrate OM, Chen B, Soft Matter., 7, 1840 (2011)
- Zhai W, Park CB, Kontopoulou M, Ind. Eng. Chem. Res., 50, 7282 (2011)
- Borsig E, van Duin M, Gotsis AD, Picchioni F, Euro.Polym. J., 44, 200 (2008)
- Tsenoglou CJ, Gotsis AD, Macromolecules, 34(14), 4685 (2001)
- Tian JH, Yu W, Zhou CX, Polymer, 47(23), 7962 (2006)
- Yamaguchi M, Wagner MH, Polymer, 47(10), 3629 (2006)
- Mousavi SA, Dadbin S, Frounchi M, Venerus DC, Medina TG, Radiation Physics and Chemistry., 79, 1088 (2010)
- Kolodka E, Wang WJ, Zhu SP, Hamielec AE, Macromolecules, 35(27), 10062 (2002)
- Lagendijk RP, Hogt AH, Buijtenhuijs A, Gotsis AD, Polymer, 42(25), 10035 (2001)
- He CX, Costeux S, Wood-Adams P, Dealy JM, Polymer, 44(23), 7181 (2003)
- Hong JS, Park SR, Lyu MY, Polym.(Korea), 35(1), 1 (2011)
- Kim HY, Jang JH, Kim BN, Lee JH, Han DH, Appl. Chem., 8(2), 378 (2004)
- Tabatabaei SH, Carreau PJ, Ajji A, Chem. Eng. Sci., 64(22), 4719 (2009)
- Hyun K, Ahn KH, Lee SJ, Sugimoto M, Koyama K, Rheol. Acta, 46(1), 123 (2006)
- Yu F, Zhang H, Liao R, Zheng H, Yu W, Zhou C, Euro.Polym. J., 45, 2110 (2009)
- Lopez Manchado MA, Biagiotti J, Torre L, Kenny JM, J. Therm. Anal. Cal., 61, 437 (2000)
- Zhang ZJ, Xing HP, Qiu J, Jiang ZW, Yu HO, Du XH, Wang YH, Ma L, Tang T, Polymer, 51(7), 1593 (2010)
- Qian J, Zhamg H, Cheng G, Huang Z, Dang S, Xu Y, Sol-Gel Technol., 56, 300 (2010)