Melt polycondensation to improve the dispersion of bacterial cellulose into polylactide via melt compounding: enhanced barrier and mechanical properties

被引:68
作者
Ambrosio-Martin, J. [1 ]
Fabra, M. J. [1 ]
Lopez-Rubio, A. [1 ]
Lagaron, J. M. [1 ]
机构
[1] CSIC, IATA, Novel Mat & Nanotechnol Grp, Valencia 46980, Spain
关键词
Bacterial cellulose; Cellulose nanowhiskers; Melt compounding; Lactic acid oligomers; Polylactide; In situ polymerization; L-LACTIC ACID; POLY(LACTIC ACID); TRANSPORT-PROPERTIES; GREEN COMPOSITES; OXYGEN-TRANSPORT; NANOWHISKERS; NANOCOMPOSITES; NANOCRYSTALS; BEHAVIOR; CRYSTALLIZATION;
D O I
10.1007/s10570-014-0523-9
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
Nanocomposites of polylactide (PLA) and bacterial cellulose nanowhiskers (BCNW) with improved properties were obtained through melt compounding. Prior to melt processing, and with the aim of improving BCNW dispersion, lactic acid oligomers (OLLA) were in situ polymerized in the presence of the nanofiller (both freeze-dried and partially hydrated). This in situ polymerization reaction enhanced the compatibilization between hydrophilic cellulose and hydrophobic PLA, even leading to chemical grafting of the OLLA onto the surface of BCNW, when this was used in a partially hydrated form. The optimized dispersion attained through this pre-incorporation strategy was confirmed by comparison with materials obtained through direct melt compounding of PLA with BCNW. Differential scanning calorimetry experiments showed that although cellulose content had not effect on melting temperatures, the degree of crystallinity was significantly affected. Addition of grafted BCNW also resulted in improved mechanical properties increasing the elastic modulus and tensile strength up to 52 and 31 %, respectively, mainly ascribed to the promotion of filler-filler and filler-matrix interactions. Moreover, the developed nanocomposites showed improvements in the water and oxygen barrier properties (measured at 80 % RH), respectively, which make them attractive for food packaging applications. This could be explained by well-dispersed nanocrystals acting as blocking agents within the polymeric matrix, reducing the diffusion through the nanocomposite films and, hence, the water and oxygen permeability. Therefore, this work offers a new route for incorporating well dispersed nanocellulose within a hydrophobic PLA matrix, overcoming the dispersion problems that this entails, especially when working with melt compounding methods.
引用
收藏
页码:1201 / 1226
页数:26
相关论文
共 80 条
[31]   THERMAL CHARACTERIZATION OF POLYLACTIDES [J].
JAMSHIDI, K ;
HYON, SH ;
IKADA, Y .
POLYMER, 1988, 29 (12) :2229-2234
[32]   Structure and properties of poly (lactic acid)/Sterculia urens uniaxial fabric biocomposites [J].
Jayaramudu, J. ;
Reddy, G. Silva Mohan ;
Varaprasad, K. ;
Sadiku, E. R. ;
Ray, S. Sinha ;
Rajulu, A. Varada .
CARBOHYDRATE POLYMERS, 2013, 94 (02) :822-828
[33]   Melt Processing of Poly(L-Lactic Acid) in the Presence of Organomodified Anionic or Cationic Clays [J].
Katiyar, Vimal ;
Gerds, Nathalie ;
Koch, Christian Bender ;
Risbo, Jens ;
Hansen, Hans Christian B. ;
Plackett, David .
JOURNAL OF APPLIED POLYMER SCIENCE, 2011, 122 (01) :112-125
[34]   Green composites from sustainable cellulose nanofibrils: A review [J].
Khalil, H. P. S. Abdul ;
Bhat, A. H. ;
Yusra, A. F. Ireana .
CARBOHYDRATE POLYMERS, 2012, 87 (02) :963-979
[35]   Transparent nanocomposites prepared by incorporating microbial nanofibrils into poly(L-lactic acid) [J].
Kim, Yeseul ;
Jung, Rira ;
Kim, Hun-Sik ;
Jin, Hyroung-Joon .
CURRENT APPLIED PHYSICS, 2009, 9 :S69-S71
[36]   Moisture management of polylactides: The effect of heat treatment [J].
Koo, Donghun ;
Du, An ;
Palmese, Giuseppe R. ;
Cairncross, Richard A. .
POLYMER, 2012, 53 (05) :1115-1123
[37]  
KOVALENKO VI, 1993, J STRUCT CHEM+, V34, P540, DOI 10.1007/BF00753522
[38]   Preparation of cellulose nanowhiskers and their reinforcing effect in polylactide [J].
Lee, Joo Hyung ;
Park, Sang Ho ;
Kim, Seong Hun .
MACROMOLECULAR RESEARCH, 2013, 21 (11) :1218-1225
[39]   Preparation and Characterization of Polymer-Inorganic Nanocomposites by In Situ Melt Polycondensation of L-Lactic Acid and Surface-Hydroxylated MgO [J].
Li, Yonghui ;
Sun, Xiuzhi Susan .
BIOMACROMOLECULES, 2010, 11 (07) :1847-1855
[40]   Investigation of the graft length impact on the interfacial toughness in a cellulose/poly(ε-caprolactone) bilayer laminate [J].
Lonnberg, Hanna ;
Fogelstrom, Linda ;
Zhou, Qi ;
Hult, Anders ;
Berglund, Lars ;
Malmstrom, Eva .
COMPOSITES SCIENCE AND TECHNOLOGY, 2011, 71 (01) :9-12