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1.
ACS Macro Lett ; 1(1): 236-240, 2012 Jan 17.
Article in English | MEDLINE | ID: mdl-35578487

ABSTRACT

The rheological properties of a dispersion of cellulose nanocrystals (CNCs) in an aqueous solution of polyoxyethylene (PEO) have been investigated. A peculiar behavior is reported. Upon adding CNC, the viscosity of the suspension first decreases and then increases. Adsorption of PEO chains on the surface of the nanoparticles has been suspected. Freeze-drying of this PEO-adsorbed CNC dispersion was performed, and the ensuing lyophilizate was extruded with low density polyethylene. Compared to neat CNC-based nanocomposites, both improved dispersibility and thermal stability were observed. This simple and physical method constitutes an approach of choice for the melt processing of CNC-based nanocomposites with a hydrophobic polymeric matrix applicable at the industrial scale.

2.
Biotechnol Bioeng ; 107(4): 612-21, 2010 Nov 01.
Article in English | MEDLINE | ID: mdl-20589841

ABSTRACT

In the present study, the main focus was the characterization and application of the by-product lignin isolated through an industrial organosolv acid hydrolysis process from sugarcane bagasse, aiming at the production of bioethanol. The sugarcane lignin was characterized and used to prepare phenolic-type resins. The analysis confirmed that the industrial sugarcane lignin is of HGS type, with a high proportion of the less substituted aromatic ring p-hydroxyphenyl units, which favors further reaction with formaldehyde. The lignin-formaldehyde resins were used to produce biobased composites reinforced with different proportions of randomly distributed sisal fibers. The presence of lignin moieties in both the fiber and matrix increases their mutual affinity, as confirmed by SEM images, which showed good adhesion at the biocomposite fiber/matrix interface. This in turn allowed good load transference from the matrix to the fiber, leading to biobased composites with good impact strength (near 500 J m(-1) for a 40 wt% sisal fiber-reinforced composite). The study demonstrates that sugarcane bagasse lignin obtained from a bioethanol plant can be used without excessive purification in the preparation of lignocellulosic fiber-reinforced biobased composites displaying high mechanical properties.


Subject(s)
Cellulose/metabolism , Composite Resins/chemical synthesis , Lignin/isolation & purification , Saccharum/metabolism , Agave/chemistry , Cellulose/chemistry , Composite Resins/chemistry , Lignin/chemistry , Saccharum/chemistry
3.
Bioresour Technol ; 101(6): 1998-2006, 2010 Mar.
Article in English | MEDLINE | ID: mdl-19880315

ABSTRACT

Lignocellulosic materials can significantly contribute to the development of biobased composites. In this work, glyoxal-phenolic resins for composites were prepared using glyoxal, which is a dialdehyde obtained from several natural resources. The resins were characterized by (1)H, (13)C, 2D, and (31)P NMR spectroscopies. Resorcinol (10%) was used as an accelerator for curing the glyoxal-phenol resins in order to obtain the thermosets. The impact-strength measurement showed that regardless of the cure cycle used, the reinforcement of thermosets by 30% (w/w) sisal fibers improved the impact strength by one order of magnitude. Curing with cycle 1 (150 degrees C) induced a high diffusion coefficient for water absorption in composites, due to less interaction between the sisal fibers and water. The composites cured with cycle 2 (180 degrees C) had less glyoxal resin coverage of the cellulosic fibers, as observed by images of the fractured interface observed by SEM. This study shows that biobased composites with good properties can be prepared using a high proportion of materials obtained from natural resources.


Subject(s)
Composite Resins/chemistry , Formaldehyde/chemistry , Glyoxal/chemistry , Phenol/chemistry , Phenols/chemistry , Polymers/chemistry , Absorption , Aldehydes/chemistry , Biomass , Conservation of Natural Resources , Diffusion , Magnetic Resonance Spectroscopy , Materials Testing , Microscopy, Electron, Scanning/methods , Surface Properties , Thermogravimetry/methods
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