Fabrication and Characterization of Citric Acid-Modified Starch Nanoparticles/Plasticized-Starch Composites

被引:241
作者
Ma, Xiaofei [2 ]
Jian, Ruijuan [2 ]
Chang, Peter R. [1 ,3 ]
Yu, Jiugao [2 ]
机构
[1] Agr & Agri Food Canada, Bioprod & Bioproc Natl Sci Program, Saskatoon, SK S7N 0X2, Canada
[2] Tianjin Univ, Sch Sci, Tianjin 300072, Peoples R China
[3] Univ Saskatchewan, Dept Agr & Bioresource Engn, Saskatoon, SK S7N 5A9, Canada
关键词
D O I
10.1021/bm800987c
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
Starch nanoparticles (SN) were prepared by delivering ethanol as the precipitant into starch-paste solution dropwise. Citric acid (CA) modified SN (CASN) were fabricated with the dry preparation technique. According to the characterization of CASN with Fourier transform infrared, X-ray diffraction, rapid visco analyzer, and scanning electron microscopy (SEM), amorphous CASN could not be gelatinized in hot water because of the cross-linking, and most of CASN ranged in size from about 50 to 100 nm. The nanocomposites were also prepared using CASN as the filler in glycerol plasticized-pea starch (GPS) matrix by the casting process. SEM revealed that CASN was dispersed evenly in the GPS matrix. As shown in dynamic mechanical thermal analysis, the introduction of CASN could improve the storage modulus and the glass transition temperature of CASN/GPS composites. The tensile yield strength and Young's modulus increased from 3.94 to 8.12 MPa and from 49.8 to 125.1 MPa, respectively, when the CASN contents varied from 0 to 4 wt %. Moreover, the values of water vapor permeability decreased from 4.76 x 10(-10) to 2.72 x 10(-10) g m(-1) s(-1) Pa-1. The improvement of these properties could be attributed to the good interaction between CASN filler and GPS matrix. The comprehensive application of green chemistry principles were demonstrated in the preparation of CASN and CASN/GPS composites.
引用
收藏
页码:3314 / 3320
页数:7
相关论文
共 36 条
[1]   Thermoplastic starch-waxy maize starch nanocrystals nanocomposites [J].
Angellier, H ;
Molina-Boisseau, S ;
Dole, P ;
Dufresne, A .
BIOMACROMOLECULES, 2006, 7 (02) :531-539
[2]   Optimization of the preparation of aqueous suspensions of waxy maize starch nanocrystals using a response surface methodology [J].
Angellier, H ;
Choisnard, L ;
Molina-Boisseau, S ;
Ozil, P ;
Dufresne, A .
BIOMACROMOLECULES, 2004, 5 (04) :1545-1551
[3]   Amylose/SWNT composites: From solution to film - Synthesis, characterization and properties [J].
Bonnet, P. ;
Albertini, D. ;
Bizot, H. ;
Bernard, A. ;
Chauvet, O. .
COMPOSITES SCIENCE AND TECHNOLOGY, 2007, 67 (05) :817-821
[4]   Preparation and properties of plasticized Starch/Multiwalled carbon nanotubes composites [J].
Cao, Xiaodong ;
Chen, Yun ;
Chang, Peter R. ;
Huneault, Michel A. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2007, 106 (02) :1431-1437
[5]   New approach to elaborate exfoliated starch-based nanobiocomposites [J].
Chivrac, Frederic ;
Pollett, Eric ;
Schmutz, Marc ;
Averous, Luc .
BIOMACROMOLECULES, 2008, 9 (03) :896-900
[6]   The preparation and characterisation of a series of chemically modified potato starches [J].
Fang, JM ;
Fowler, PA ;
Tomkinson, J ;
Hill, CAS .
CARBOHYDRATE POLYMERS, 2002, 47 (03) :245-252
[7]   Phase and glass transition behaviour of concentrated barley starch-glycerol-water mixtures, a model for thermoplastic starch [J].
Forssell, PM ;
Mikkila, JM ;
Moates, GK ;
Parker, R .
CARBOHYDRATE POLYMERS, 1997, 34 (04) :275-282
[8]   Efficient approach to design, stable water-dispersible nanoparticles of hydrophobic cellulose esters [J].
Hornig, Stephanie ;
Heinze, Thomas .
BIOMACROMOLECULES, 2008, 9 (05) :1487-1492
[9]   Studies on the properties of Montmorillonite-reinforced thermoplastic starch composites [J].
Huang, MF ;
Yu, JG ;
Ma, XF .
POLYMER, 2004, 45 (20) :7017-7023
[10]   Physical properties of starch nanocrystal-reinforced pullulan films [J].
Kristo, Eleana ;
Biliaderis, Costas G. .
CARBOHYDRATE POLYMERS, 2007, 68 (01) :146-158