Nano-fibrillated cellulose-zeolites based new hybrid composites aerogels with super thermal insulating properties

被引:91
作者
Bendahou, Dounia [1 ,2 ]
Bendahou, Abdelkader [1 ]
Seantier, Bastien [1 ]
Grohens, Yves [1 ]
Kaddami, Hamid [2 ]
机构
[1] Univ Bretagne Sud, Lab Ingn Mat Bretagne, F-56321 Lorient, France
[2] Cadi Ayyad Univ, Fac Sci & Technol, Lab Organometall & Macromol Chem, Marrakech, Morocco
关键词
TEMPO-oxidized NFC; Nanozeolites; Super-insulating aerogels; Porosity; Mechanical properties; NANOFIBRILLATED CELLULOSE; MECHANICAL-PROPERTIES; ORGANIC AEROGELS; CONDUCTIVITY; NANOCELLULOSE; TRANSPARENT; XEROGELS; SILICA; SIZE;
D O I
10.1016/j.indcrop.2014.11.012
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Aerogel monoliths were prepared using combinations of cellulose microfibers, cellulose nanofibers and nanozeolites. It was shown that these hybrid materials have tunable thermal conductivity and mechanical properties. Thermal conductivity value as low as 18 mW m(-1) K-1 was obtained that confirms the superinsulation ability of these new fibrous aerogels. Synergism on the thermal conductivity properties was shown by adjunction of nanozeolites to cellulose microfibrils by reaching pore size lower than 100 nm that significantly reduces the thermal conductivity of the hybrid aerogels as predicted by Knudsen et al. In one hand, these properties seem to depend strongly on the interactions between the component and their relative fractions. On the other hand, the addition of nanofibrils to micrometric fibers based aerogel yields a significant increase of its stiffness. The higher improvement of the stiffness was obtained when nanofibrils with high surface charge are added. This study certainly opens a new investigation field to optimize the thermal conductivity properties of hybrid nanocellulose based aerogels. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:374 / 382
页数:9
相关论文
共 64 条
[1]  
Aerogel.org, 2014, STRONG AND FLEXIBLE
[2]  
Aspen Aerogels, 2014, SPACE LOFT 6250
[3]   Aerogel insulation for building applications: A state-of-the-art review [J].
Baetens, Ruben ;
Jelle, Bjorn Petter ;
Gustavsen, Arild .
ENERGY AND BUILDINGS, 2011, 43 (04) :761-769
[4]   Control of size and viscoelastic properties of nanofibrillated cellulose from palm tree by varying the TEMPO-mediated oxidation time [J].
Benhamou, Karima ;
Dufresne, Alain ;
Magnin, Albert ;
Mortha, Gerard ;
Kaddami, Hamid .
CARBOHYDRATE POLYMERS, 2014, 99 :74-83
[5]   Nanofibrillated cellulose composite hydrogel for the replacement of the nucleus pulposus [J].
Borges, Ana C. ;
Eyholzer, Christian ;
Duc, Fabien ;
Bourban, Pierre-Etienne ;
Tingaut, Philippe ;
Zimmermann, Tanja ;
Pioletti, Dominique P. ;
Manson, Jan-Anders E. .
ACTA BIOMATERIALIA, 2011, 7 (09) :3412-3421
[6]  
Bouziane M. N., THESIS
[7]   Adsorption of gases in multimolecular layers [J].
Brunauer, S ;
Emmett, PH ;
Teller, E .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1938, 60 :309-319
[8]   Cellulose-Silica Nanocomposite Aerogels by In Situ Formation of Silica in Cellulose Gel [J].
Cai, Jie ;
Liu, Shilin ;
Feng, Jiao ;
Kimura, Satoshi ;
Wada, Masahisa ;
Kuga, Shigenori ;
Zhang, Lina .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2012, 51 (09) :2076-2079
[9]   Electroactive nanofibrillated cellulose aerogel composites with tunable structural and electrochemical properties [J].
Carlsson, Daniel O. ;
Nystrom, Gustav ;
Zhou, Qi ;
Berglund, Lars A. ;
Nyholm, Leif ;
Stromme, Maria .
JOURNAL OF MATERIALS CHEMISTRY, 2012, 22 (36) :19014-19024
[10]  
Chen WC, 2012, TISSUE ENG PT A, V18, P816, DOI [10.1089/ten.tea.2011.0267, 10.1089/ten.TEA.2011.0267]