Optimization of the Preparation of Aqueous Suspensions of Waxy Maize Starch Nanocrystals Using a Response Surface Methodology
Author(s) -
Hélène AngellierCoussy,
Luc Choisnard,
Sonia Molina-Boisseau,
P. Ozil,
Alain Dufresne
Publication year - 2004
Publication title -
biomacromolecules
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.689
H-Index - 220
eISSN - 1526-4602
pISSN - 1525-7797
DOI - 10.1021/bm049914u
Subject(s) - hydrolysis , starch , response surface methodology , aqueous solution , central composite design , yield (engineering) , acid hydrolysis , chemistry , residue (chemistry) , waxy corn , maize starch , chemical engineering , nanocrystal , enzymatic hydrolysis , modified starch , composite number , chromatography , materials science , organic chemistry , composite material , engineering
Response surface methodology was used to investigate the effect of five selected factors on the selective H(2)SO(4) hydrolysis of waxy maize starch granules. These predictors were temperature, acid concentration, starch concentration, hydrolysis duration, and stirring speed. The goal of this study was to optimize the preparation of aqueous suspensions of starch nanocrystals, i.e., to determine the operative conditions leading to the smallest size of insoluble hydrolyzed residue within the shortest time and with the highest yield. Therefore empirical models were elaborated for the hydrolysis yield and the size of the insoluble residues using a central composite face design involving 31 trials. They allowed us to show that it was possible to obtain starch nanocrystals after only 5 days of H(2)SO(4) hydrolysis with a yield of 15 wt % and having the same shape as those obtained from the classical procedure after 40 days of HCl treatment, with a yield of 0.5 wt %.
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