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Erschienen in: Cellulose 4/2012

01.08.2012 | Original Paper

TEMPO-oxidized cellulose nanofiber films: effect of surface morphology on water resistance

verfasst von: Galina Rodionova, Øyvind Eriksen, Øyvind Gregersen

Erschienen in: Cellulose | Ausgabe 4/2012

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Abstract

2,2,6,6-Tetramethylpiperidine-1-oxyl radical (TEMPO)-oxidized cellulose nanofibers were prepared from two kraft pulps (Norway spruce and mixed eucalyptus) using the TEMPO/NaBr/NaClO system at pH 10 and 22 °C. After reaction and mechanical treatment, the TEMPO-oxidized celluloses were used for preparation of self-standing films and coatings of laminate films on 50-μm-thick polyethylene terephthalate films. Characterization of the films was performed based on water contact angle measurements, laser profilometry, scanning electron microscopy, and field-emission scanning electron microscopy. The purpose of this study is to understand how the measured contact angles are affected by the film’s physical properties (morphology, thickness, density, and roughness).

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Literatur
Zurück zum Zitat Bee T, Cross E, Dias A, Lee K-W, Shoichet M, McCarthy T (1992) Control of wettability of polymers using organic surface chemistry. J Adhes Sci Technol 6:719–731CrossRef Bee T, Cross E, Dias A, Lee K-W, Shoichet M, McCarthy T (1992) Control of wettability of polymers using organic surface chemistry. J Adhes Sci Technol 6:719–731CrossRef
Zurück zum Zitat Bragd P, van Bekkum H, Besemer A (2004) TEMPO-mediated oxidation of polysaccharides: survey of methods and applications. Top Catal 27:49–66CrossRef Bragd P, van Bekkum H, Besemer A (2004) TEMPO-mediated oxidation of polysaccharides: survey of methods and applications. Top Catal 27:49–66CrossRef
Zurück zum Zitat Cassie A, Baxter S (1944) Wettability of porous surfaces. Trans Faraday Soc 40:546–551CrossRef Cassie A, Baxter S (1944) Wettability of porous surfaces. Trans Faraday Soc 40:546–551CrossRef
Zurück zum Zitat Chinga G, Johnssen P, Dougherty R, Lunden-Berli E, Walter J (2007) Quantification of the 3-D micro-structure of SC surfaces. J Microsc Oxford 27(3):254–265CrossRef Chinga G, Johnssen P, Dougherty R, Lunden-Berli E, Walter J (2007) Quantification of the 3-D micro-structure of SC surfaces. J Microsc Oxford 27(3):254–265CrossRef
Zurück zum Zitat Chinga-Carrasco G, Syverud K (2010) Computer-assisted quantification of the multi-scale structure of films made of nanofibrillated cellulose. J Nanopart Res 12:841–851CrossRef Chinga-Carrasco G, Syverud K (2010) Computer-assisted quantification of the multi-scale structure of films made of nanofibrillated cellulose. J Nanopart Res 12:841–851CrossRef
Zurück zum Zitat Chinga-Carrasco G, Yu Y, Diserud O (2011) Quantitative electron microscopy of cellulose nanofibril structures from Eucalyptus and Pinus radiate kraft pulp fibers. Microsc Microanal 11:1–9 Chinga-Carrasco G, Yu Y, Diserud O (2011) Quantitative electron microscopy of cellulose nanofibril structures from Eucalyptus and Pinus radiate kraft pulp fibers. Microsc Microanal 11:1–9
Zurück zum Zitat Ek M (2009) Paper chemistry and technology, vol 3. de Gruyter, Berlin Ek M (2009) Paper chemistry and technology, vol 3. de Gruyter, Berlin
Zurück zum Zitat Erbil H (2006) Surface chemistry of solid and liquid interfaces. Blackwell, Oxford Erbil H (2006) Surface chemistry of solid and liquid interfaces. Blackwell, Oxford
Zurück zum Zitat Fukuzumi H, Saito T, Iwata T, Kumamoto Y, Isogai A (2009) Transparent and high gas barrier films of cellulose nanofibers prepared by TEMPO-mediated oxidation. Biomacromolecules 10:162–165CrossRef Fukuzumi H, Saito T, Iwata T, Kumamoto Y, Isogai A (2009) Transparent and high gas barrier films of cellulose nanofibers prepared by TEMPO-mediated oxidation. Biomacromolecules 10:162–165CrossRef
Zurück zum Zitat Henriksson M, Henriksson G, Berglund L, Lindström T (2007) An environmentally friendly method for enzyme-assisted preparation of microfibrillated cellulose (MFC) nanofibers. Eur Polym J 43:3434–3441CrossRef Henriksson M, Henriksson G, Berglund L, Lindström T (2007) An environmentally friendly method for enzyme-assisted preparation of microfibrillated cellulose (MFC) nanofibers. Eur Polym J 43:3434–3441CrossRef
Zurück zum Zitat Karabulut E, Wågberg L (2011) Design and characterization of cellulose nanofibril-based freestanding films prepared by layer-by-layer deposition technique. Soft Matter 7:3467–3474CrossRef Karabulut E, Wågberg L (2011) Design and characterization of cellulose nanofibril-based freestanding films prepared by layer-by-layer deposition technique. Soft Matter 7:3467–3474CrossRef
Zurück zum Zitat Minelli M, Baschetti M, Doghieri F, Ankerfors M, Lindström T, Sirό I, Plackett D (2010) Investigation of mass transport properties of microfibrillated cellulose (MFC) films. J Membrane Sci 358:67–75CrossRef Minelli M, Baschetti M, Doghieri F, Ankerfors M, Lindström T, Sirό I, Plackett D (2010) Investigation of mass transport properties of microfibrillated cellulose (MFC) films. J Membrane Sci 358:67–75CrossRef
Zurück zum Zitat Mittal K (2009) Contact angle, wettability and adhesion, vol 6. Leiden, Boston Mittal K (2009) Contact angle, wettability and adhesion, vol 6. Leiden, Boston
Zurück zum Zitat Moutinho I, Figueiredo M, Ferreira P (2007) Evaluating the surface energy of laboratory-made paper sheets by contact angle measurements. Tappi J 6:26–32 Moutinho I, Figueiredo M, Ferreira P (2007) Evaluating the surface energy of laboratory-made paper sheets by contact angle measurements. Tappi J 6:26–32
Zurück zum Zitat Pääkkö M, Ankerfors M, Kosonen H, Nykänen A, Ahola S, Östenberg M, Ruokolainen J, Laine J, Larsson P, Ikkala O, Lindström T (2007) Enzymatic hydrolysis combined with mechanical shearing and high-pressure homogenization for nanoscale cellulose fibrils and strong gels. Biomacromolecules 8:1934–1941CrossRef Pääkkö M, Ankerfors M, Kosonen H, Nykänen A, Ahola S, Östenberg M, Ruokolainen J, Laine J, Larsson P, Ikkala O, Lindström T (2007) Enzymatic hydrolysis combined with mechanical shearing and high-pressure homogenization for nanoscale cellulose fibrils and strong gels. Biomacromolecules 8:1934–1941CrossRef
Zurück zum Zitat Papakonstantinou D, Amanatides E, Mataras D, Ioannidis V, Nikolopoulos P (2007) Improved surface energy analysis for plasma treated PET films. Plasma Process Polym 4:1057–1062CrossRef Papakonstantinou D, Amanatides E, Mataras D, Ioannidis V, Nikolopoulos P (2007) Improved surface energy analysis for plasma treated PET films. Plasma Process Polym 4:1057–1062CrossRef
Zurück zum Zitat Ryan B, Poduska K (2008) Roughness effects on contact angle measurements. Am J Phys 76:1074–1077CrossRef Ryan B, Poduska K (2008) Roughness effects on contact angle measurements. Am J Phys 76:1074–1077CrossRef
Zurück zum Zitat Saito T, Nishiyama Y, Putaux J, Vignon M, Isogai A (2006) Homogeneous suspensions of individualized microfibrils from TEMPO-catalyzed oxidation of native cellulose. Biomacromolecules 7:1687–1691CrossRef Saito T, Nishiyama Y, Putaux J, Vignon M, Isogai A (2006) Homogeneous suspensions of individualized microfibrils from TEMPO-catalyzed oxidation of native cellulose. Biomacromolecules 7:1687–1691CrossRef
Zurück zum Zitat Saito T, Kimura S, Nishiyama Y, Isogai A (2007) Cellulose nanofibers prepared by TEMPO-mediated oxidation of native cellulose. Biomacromolecules 8:2485–2491CrossRef Saito T, Kimura S, Nishiyama Y, Isogai A (2007) Cellulose nanofibers prepared by TEMPO-mediated oxidation of native cellulose. Biomacromolecules 8:2485–2491CrossRef
Zurück zum Zitat Spence K, Venditti R, Rojas O, Habibi Y, Pawlak J (2010) The effect of chemical composition on microfibrillar cellulose films from wood pulps: water interactions and physical properties for packaging applications. Cellulose 17:835–848CrossRef Spence K, Venditti R, Rojas O, Habibi Y, Pawlak J (2010) The effect of chemical composition on microfibrillar cellulose films from wood pulps: water interactions and physical properties for packaging applications. Cellulose 17:835–848CrossRef
Zurück zum Zitat Syverud K, Xhanari K, Chinga-Carrasco G, Yu Y, Stenius P (2011) Films made of cellulose nanofibrils: surface modification by adsorption of a cationic surfactant and characterization by computer-assisted electron microscopy. J Nanopart Res 13:773–782CrossRef Syverud K, Xhanari K, Chinga-Carrasco G, Yu Y, Stenius P (2011) Films made of cellulose nanofibrils: surface modification by adsorption of a cationic surfactant and characterization by computer-assisted electron microscopy. J Nanopart Res 13:773–782CrossRef
Zurück zum Zitat Taniguchi T (1998) New films produced from microfibrillated natural fibers. Polym Int 47:291–294CrossRef Taniguchi T (1998) New films produced from microfibrillated natural fibers. Polym Int 47:291–294CrossRef
Zurück zum Zitat Turbak A, Snyder F, Sandberg K (1983) Microfibrillated cellulose, a new cellulose product: Properties, uses, and commercial potential. J Appl Polym Sci Appl Polym Symp 37:813 Turbak A, Snyder F, Sandberg K (1983) Microfibrillated cellulose, a new cellulose product: Properties, uses, and commercial potential. J Appl Polym Sci Appl Polym Symp 37:813
Zurück zum Zitat Wågberg L, Decher G, Norgren M, Lindström T, Ankerfors M, Axnäs K (2008) The build-up of polyelectrolyte multilayers of microfibrillated cellulose and cationic polyelectrolytes. Langmuir 24:784–795CrossRef Wågberg L, Decher G, Norgren M, Lindström T, Ankerfors M, Axnäs K (2008) The build-up of polyelectrolyte multilayers of microfibrillated cellulose and cationic polyelectrolytes. Langmuir 24:784–795CrossRef
Zurück zum Zitat Zhang C, Wang L, Zhao J, Zhu P (2011) Effect of drying methods on structure and mechanical properties of bacterial cellulose films. Adv Mater Res 239–242:2667–2670 Zhang C, Wang L, Zhao J, Zhu P (2011) Effect of drying methods on structure and mechanical properties of bacterial cellulose films. Adv Mater Res 239–242:2667–2670
Metadaten
Titel
TEMPO-oxidized cellulose nanofiber films: effect of surface morphology on water resistance
verfasst von
Galina Rodionova
Øyvind Eriksen
Øyvind Gregersen
Publikationsdatum
01.08.2012
Verlag
Springer Netherlands
Erschienen in
Cellulose / Ausgabe 4/2012
Print ISSN: 0969-0239
Elektronische ISSN: 1572-882X
DOI
https://doi.org/10.1007/s10570-012-9721-5

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