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Effective preparation and characterization of montmorillonite/poly(ε‐caprolactone)‐based polyurethane nanocomposites
Authors:Eun Hwan Jeong  Jie Yang  Han Sup Lee  Seung Won Seo  Du Hyun Baik  Jeonghan Kim  Ji Ho Youk
Affiliation:1. Department of Advanced Fiber Engineering, Division of Nano‐Systems, Inha University, Incheon 402‐751, Republic of Korea;2. R&D Center for Fibers and Textiles, Hyosung Co., Anyang 431‐080, Republic of Korea;3. Department of Textile Engineering, Chungnam National University, Daejeon 305‐764, Republic of Korea;4. Chemicals Research Institute, Kolon Central Research Park, Yongin‐city 446‐797, Republic of Korea;5. Department of Advanced Fiber Engineering, and Intelligent Textile System Research Center, Inha University, Incheon 402‐751, Republic of Korea
Abstract:In this study, montmorillonite (MMT)/poly(?‐caprolactone)‐based polyurethane cationomer (MMT/PCL‐PUC) nanocomposites were prepared and their mechanical properties, thermal stability, and biodegradability were investigated. PCL‐PUC has 3 mol % of quaternary ammonium groups in the main chain. The MMT was successfully exfoliated and well dispersed in the PCL‐PUC matrix for up to 7 wt % of MMT. The 3 mol % of quaternary ammonium groups facilitated exfoliation of MMT. The 1 wt % MMT/PCL‐PUC nanocomposites showed enhanced tensile properties relative to the pure PCL‐PU. As the MMT content increased in the MMT/PCL‐PUC nanocomposites, the degree of microphase separation of PCL‐PUC decreased because of the strong interactions between the PCL‐PUC chains and the exfoliated MMT layers. This resulted in an increase in the Young's modulus and a decrease in the elongation at break and maximum stress of the MMT/PCL‐PUC nanocomposites. Biodegradability of the MMT/PCL‐PUC nanocomposites was dramatically increased with increasing content of MMT, likely because of the less phase‐separated morphology of MMT/PCL‐PUC. © 2007 Wiley Periodicals, Inc. J Appl Polym Sci, 2008
Keywords:poly(ϵ  ‐caprolactone) (PCL)  polyurethane cationomer (PUC)  montmorillonite (MMT)  nanocomposits  exfoliation  hydrolytic degradation
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