From Interfacial Ring-Opening Polymerization to Melt Processing of Cellulose Nanowhisker-Filled Polylactide-Based Nanocomposites

被引:303
作者
Goffin, Anne-Lise [1 ]
Raquez, Jean-Marie [1 ]
Duquesne, Emmanuel [1 ]
Siqueira, Gilberto [2 ]
Habibi, Youssef [1 ,2 ]
Dufresne, Alain [2 ]
Dubois, Philippe [1 ]
机构
[1] Univ Mons UMONS, Ctr Innovat & Res Mat & Polymers CIRMAP, Lab Polymer & Composite Mat, B-7000 Mons, Belgium
[2] Int Sch Paper Print Media & Biomat PAGORA, Grenoble Inst Technol, F-38402 St Martin Dheres, France
关键词
ACID; CRYSTALLIZATION; BEHAVIOR; BIONANOCOMPOSITES; NANOCRYSTALS; COPOLYMERS; WHISKERS;
D O I
10.1021/bm200581h
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In the present work, cellulose nanowhiskers (CNWs), extracted from ramie fibers, were incorporated in polylactide (PLA)-based composites. Prior to the blending, PLA chains were chemically grafted on the surface of CNW to enhance the compatibilization between CNW and the hydrophobic polyester matrix. Ring-opening polymerization of L-lactide was initiated from the hydroxyl groups available at the CNW surface to yield CNW-g-PLA nanohybrids. PLA-based nanocomposites were prepared by melt blending to ensure a green concept of the study thereby limiting the use of organic solvents. The influence of PLA-grafted cellulose nanoparticles on the mechanical and thermal properties of the ensuing nanocomposites was deeply investigated. The thermal behavior and mechanical properties of the nanocomposites were determined using differential scanning calorimetry (DSC) and dynamical mechanical and thermal analysis (DMTA), respectively. It was clearly evidenced that the chemical grafting of CNW enhances their compatibility with the polymeric matrix and thus improves the final properties of the nanocomposites. Large modification of the crystalline properties such as the crystallization half-time was evidenced according to the nature of the PLA matrix and the content of nanofillers.
引用
收藏
页码:2456 / 2465
页数:10
相关论文
共 38 条
[1]   Melt preparation and nucleation efficiency of polylactide stereocomplex crystallites [J].
Anderson, KS ;
Hillmyer, MA .
POLYMER, 2006, 47 (06) :2030-2035
[2]   An overview of polylactides as packaging materials [J].
Auras, R ;
Harte, B ;
Selke, S .
MACROMOLECULAR BIOSCIENCE, 2004, 4 (09) :835-864
[3]   THE MORPHOLOGY OF POLY(ARYL-ETHER-ETHER-KETONE) [J].
BLUNDELL, DJ ;
OSBORN, BN .
POLYMER, 1983, 24 (08) :953-958
[4]   Investigation of polybutylene succinate-co-adipate (PBSA)/montmorillonite layered silicate (MLS) melt-processed nanocomposites [J].
Steeves, Diane M. ;
Farrell, Richard ;
Ratto, Jo Ann .
JOURNAL OF BIOBASED MATERIALS AND BIOENERGY, 2007, 1 (01) :94-108
[5]   Polylactic acid/cellulose whisker nanocomposites modified by polyvinyl alcohol [J].
Bondeson, Daniel ;
Oksman, Kristiina .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2007, 38 (12) :2486-2492
[6]   Nano-biocomposites: Biodegradable polyester/nanoclay systems [J].
Bordes, Perrine ;
Pollet, Eric ;
Averous, Luc .
PROGRESS IN POLYMER SCIENCE, 2009, 34 (02) :125-155
[7]   One-pot polymerization, surface grafting, and processing of waterborne polyurethane-cellulose nanocrystal nanocomposites [J].
Cao, Xiaodong ;
Habibi, Youssef ;
Lucia, Lucian A. .
JOURNAL OF MATERIALS CHEMISTRY, 2009, 19 (38) :7137-7145
[8]   AMORPHOUS AND CRYSTALLINE MORPHOLOGIES IN GLYCOLIC ACID AND LACTIC-ACID POLYMERS [J].
COHN, D ;
YOUNES, H ;
MAROM, G .
POLYMER, 1987, 28 (12) :2018-2022
[9]   Bionanocomposites: A new concept of ecological, bioinspired, and functional hybrid materials [J].
Darder, Margarita ;
Aranda, Pilar ;
Ruiz-Hitzky, Eduardo .
ADVANCED MATERIALS, 2007, 19 (10) :1309-1319
[10]   A DSC study of the crystallization behaviour of polylactic acid and its nanocomposites [J].
Day, M. ;
Nawaby, A. Victoria ;
Liao, X. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2006, 86 (03) :623-629