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Concentration driven cocrystallisation and percolation in all-cellulose nanocomposites

Authors :
Denis Lourdin
Eric Leroy
Joël Bréard
Bernard Cathala
Jorge Peixinho
Benoît Duchemin
Laboratoire de génie des procédés - environnement - agroalimentaire ( GEPEA )
Mines Nantes ( Mines Nantes ) -Université de Nantes ( UN ) -Ecole Nationale Vétérinaire, Agroalimentaire et de l'alimentation Nantes-Atlantique ( ONIRIS ) -Centre National de la Recherche Scientifique ( CNRS )
Unité de recherche sur les Biopolymères, Interactions Assemblages (BIA)
Institut National de la Recherche Agronomique (INRA)
Laboratoire Ondes et Milieux Complexes (LOMC)
Centre National de la Recherche Scientifique (CNRS)-Université Le Havre Normandie (ULH)
Normandie Université (NU)-Normandie Université (NU)
Laboratoire de génie des procédés - environnement - agroalimentaire (GEPEA)
Université de Nantes - UFR des Sciences et des Techniques (UN UFR ST)
Université de Nantes (UN)-Université de Nantes (UN)-IMT Atlantique Bretagne-Pays de la Loire (IMT Atlantique)
Institut Mines-Télécom [Paris] (IMT)-Institut Mines-Télécom [Paris] (IMT)-Centre National de la Recherche Scientifique (CNRS)-Ecole Polytechnique de l'Université de Nantes (EPUN)
Université de Nantes (UN)-Université de Nantes (UN)-Institut Universitaire de Technologie - Nantes (IUT Nantes)
Université de Nantes (UN)-Institut Universitaire de Technologie Saint-Nazaire (IUT Saint-Nazaire)
Université de Nantes (UN)-Institut Universitaire de Technologie - La Roche-sur-Yon (IUT La Roche-sur-Yon)
Université de Nantes (UN)-Ecole Nationale Vétérinaire, Agroalimentaire et de l'alimentation Nantes-Atlantique (ONIRIS)-Université Bretagne Loire (UBL)
Matrices Aliments Procédés Propriétés Structure - Sensoriel (GEPEA-MAPS2)
Université de Nantes (UN)-Ecole Nationale Vétérinaire, Agroalimentaire et de l'alimentation Nantes-Atlantique (ONIRIS)-Université Bretagne Loire (UBL)-Université de Nantes - UFR des Sciences et des Techniques (UN UFR ST)
Source :
Cellulose, Cellulose, Springer Verlag, 2016, 23 (1), pp.529-543. 〈10.1007/s10570-015-0805-x〉, Cellulose, Springer Verlag, 2016, 23 (1), pp.529-543. ⟨10.1007/s10570-015-0805-x⟩
Publication Year :
2015
Publisher :
Springer Science and Business Media LLC, 2015.

Abstract

International audience; All-cellulose nanocomposites reinforced by cellulose nanocrystals (CNC) were produced using a solvent consisting of 1-butyl-3-methylimidazolium chloride and dimethyl sulfoxide. Microcrystalline cellulose (MCC) was pre-dissolved at high temperature in the solvent. Freeze-dried CNC were then added to the slurry at room temperature, thereby avoiding complete CNC dissolution. Solid all-cellulose composite films were obtained by film casting, solvent exchange and drying. The MCC to CNC ratio was kept constant while the solvent content was incremented. The short-range and long-range cellulose–cellulose interactions in the solid materials were respectively assessed by Fourier-transform infrared spectroscopy and X-ray diffraction. The CNC used in this work contained both cellulose I and cellulose II. The cellulose concentration in the mixture drastically changed the overall crystallinity as well as the cellulose I to cellulose II ratio in the ACC. Cellulose II was formed by recrystallisation of the dissolved fractions. These fractions include the pre-dissolved MCC and the cellulose II portion of the CNC. Cocrystallisation with the cellulose I CNC acting as a template was also evidenced. This phenomenon was controlled by the initial solvent content. The correlation between the hygromechanical properties and the nanostructure features of the ACC was investigated by humidity-controlled dynamic mechanical analysis (RH-DMA). The introduction of the cocrystallisation and percolation concepts provided a thorough explanation for the humidity dependency of the storage modulus.

Details

ISSN :
1572882X and 09690239
Volume :
23
Database :
OpenAIRE
Journal :
Cellulose
Accession number :
edsair.doi.dedup.....c60ce4ab5da72328d2fc69dfebce3bff