On the mechanism behind freezing-induced chemical crosslinking in ice-templated cellulose nanofibril aerogels

被引:68
作者
Erlandsson, Johan
Pettersson, Torbjorn
Ingverud, Tobias
Granberg, Hjalmar
Larsson, Per A.
Malkoch, Michael
Wagberg, Lars
机构
[1] Division of Fibre Technology, Department of Fibre and Polymer Technology, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal Institute of Technology, Teknikringen 56, Stockholm
[2] Wallenberg Wood Science Center, KTH Royal Institute of Technology, Teknikringen 56, 8 Stockholm
[3] Papermaking and Packaging, Paper Technology, RISE Bioeconomy, Box 5064, Stockholm
[4] BiMaC Innovation, KTH Royal Institute of Technology, Teknikringen 8, Stockholm
[5] Division of Coating Technology, Department of Fibre and Polymer Technology, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal Institute of Technology, Teknikringen 56, Stockholm
关键词
ATOMIC-FORCE MICROSCOPE; PERIODATE-OXIDATION; SHAPE RECOVERY; NANOCELLULOSE AEROGELS; WATER; FIBERS; BEADS; MICROSPHERES; MICROFIBRILS; FABRICATION;
D O I
10.1039/c8ta06319b
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The underlying mechanism related to freezing-induced crosslinking of aldehyde-containing cellulose nanofibrils (CNFs) has been investigated, and the critical parameters behind this process have been identified. The aldehydes introduced by periodate oxidation allows for formation of hemiacetal bonds between the CNFs provided the fibrils are in sufficiently close contact before the water is removed. This is achieved during the freezing process where the cellulose components are initially separated, and the growth of ice crystals forces the CNFs to come into contact in the thin lamellae between the ice crystals. The crosslinked 3-D structure of the CNFs can subsequently be dried under ambient conditions after solvent exchange and still maintain a remarkably low density of 35 kg m(-3), i.e. a porosity greater than 98%. A lower critical amount of aldehydes, 0.6 mmol g(-1), was found necessary in order to generate a crosslinked 3-D CNF structure of sufficient strength not to collapse during the ambient drying. The chemical stability of the 3-D structure can be further enhanced by converting the hemiacetals to acetals by treatment with an alcohol under acidic conditions.
引用
收藏
页码:19371 / 19380
页数:10
相关论文
共 46 条
[1]   Cytotoxicity tests of cellulose nanofibril-based structures [J].
Alexandrescu, Laura ;
Syverud, Kristin ;
Gatti, Antonietta ;
Chinga-Carrasco, Gary .
CELLULOSE, 2013, 20 (04) :1765-1775
[2]   Aerogel Microspheres from Natural Cellulose Nanofibrils and Their Application as Cell Culture Scaffold [J].
Cai, Hongli ;
Sharma, Sudhir ;
Liu, Wenying ;
Mu, Wei ;
Liu, Wei ;
Zhang, Xiaodan ;
Deng, Yulin .
BIOMACROMOLECULES, 2014, 15 (07) :2540-2547
[3]   Strong, Water-Durable, and Wet-Resilient Cellulose Nanofibril-Stabilized Foams from Oven Drying [J].
Cervin, Nicholas Tchang ;
Johanson, Erik ;
Larsson, Per A. ;
Wagberg, Lars .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (18) :11682-11689
[4]   Ultra porous nanocellulose aerogels as separation medium for mixtures of oil/water liquids [J].
Cervin, Nicholas Tchang ;
Aulin, Christian ;
Larsson, Per Tomas ;
Wagberg, Lars .
CELLULOSE, 2012, 19 (02) :401-410
[5]   Partial periodate oxidation and thermal cross-linking for the processing of thermoset all-cellulose composites [J].
Codou, Amandine ;
Guigo, Nathanael ;
Heux, Laurent ;
Sbirrazzuoli, Nicolas .
COMPOSITES SCIENCE AND TECHNOLOGY, 2015, 117 :54-61
[6]   Fuzzy nanoassemblies: Toward layered polymeric multicomposites [J].
Decher, G .
SCIENCE, 1997, 277 (5330) :1232-1237
[7]   DIRECT MEASUREMENT OF COLLOIDAL FORCES USING AN ATOMIC FORCE MICROSCOPE [J].
DUCKER, WA ;
SENDEN, TJ ;
PASHLEY, RM .
NATURE, 1991, 353 (6341) :239-241
[8]   On the relationship between fibre composition and material properties following periodate oxidation and borohydride reduction of lignocellulosic fibres [J].
Duran, Veronica Lopez ;
Larsson, Per A. ;
Wagberg, Lars .
CELLULOSE, 2016, 23 (06) :3495-3510
[9]   Macro- and mesoporous nanocellulose beads for use in energy storage devices [J].
Erlandsson, Johan ;
Duran, Veronica Lopez ;
Granberg, Hjalmar ;
Sandberg, Mats ;
Larsson, Per A. ;
Wagberg, Lars .
APPLIED MATERIALS TODAY, 2016, 5 :246-254
[10]   Cellulosic nanofibrils from eucalyptus, acacia and pine fibers [J].
Fall, Andreas B. ;
Burman, Ann ;
Wagberg, Lars .
NORDIC PULP & PAPER RESEARCH JOURNAL, 2014, 29 (01) :176-184