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Erschienen in: Cellulose 7/2017

27.04.2017 | Original Paper

Cellulose nanofiber/carboxymethyl cellulose blends as an efficient coating to improve the structure and barrier properties of paperboard

verfasst von: S. M. Mazhari Mousavi, E. Afra, M. Tajvidi, D. W. Bousfield, M. Dehghani-Firouzabadi

Erschienen in: Cellulose | Ausgabe 7/2017

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Abstract

Cellulose nanofibers (CNF) have been suggested in the literature as a potential barrier coating layer for paper and paperboard. However, due to its rheological properties and solids content, the material is difficult to apply to paper at significant coat weight levels. The use of CNF as a coating to improve the structure and barrier properties of paperboard was investigated. Two forms of CNF were used: (1) refiner produced material and (2) material produced with an ultra-fine grinder. Carboxymethyl cellulose (CMC) was used for some samples as an additive. The rheology of these suspensions was characterized. These materials were applied onto the surface of paperboard using a draw-down rod coater in two layers. Scanning electron microscope (SEM) was used to see the coverage of the paper by the CNF layer. Air permeability, water penetration and barrier properties of the samples were characterized. The steady shear viscosity of CNF suspension decreased after the addition of CMC. Although CNF at 2% solid content without CMC could not be spread out onto the surface of paper uniformly, 3% CNF along with CMC was successfully coated on the surface of paper: CMC acts as a dispersant that produces a uniform suspension with minimal flocs. The ground CNF with CMC produced the best samples with good coverage as revealed by SEM images. The results show that the structure and barrier properties of coated paperboards improved considerably by the application of CNF coatings.

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Literatur
Zurück zum Zitat Afra E, Mohammadnejad S, Saraeyan A (2016) Cellulose nanofibrils as coating matrial and its effect on paper properties. Prog Org Coat 101:455–460CrossRef Afra E, Mohammadnejad S, Saraeyan A (2016) Cellulose nanofibrils as coating matrial and its effect on paper properties. Prog Org Coat 101:455–460CrossRef
Zurück zum Zitat Ahola S, Myllytie P, Osterberg M, Teerinen T, Laine J (2008) Effect of polymer adsorption on cellulose nanofibril water binding capacity and aggregation. BioResources 3(4):1315–1328 Ahola S, Myllytie P, Osterberg M, Teerinen T, Laine J (2008) Effect of polymer adsorption on cellulose nanofibril water binding capacity and aggregation. BioResources 3(4):1315–1328
Zurück zum Zitat Anthony R, Xiang Z, Runge T (2015) Paper coating performance of hemicellulose-rich natural polymer from distiller’s grains. Prog Org Coat 89:240–245CrossRef Anthony R, Xiang Z, Runge T (2015) Paper coating performance of hemicellulose-rich natural polymer from distiller’s grains. Prog Org Coat 89:240–245CrossRef
Zurück zum Zitat Aulin C, Gallstedt M, Lindstrom T (2010) Oxygen and oil barrier properties of microfibrillated cellulose films and coatings. Cellulose 17:559–574CrossRef Aulin C, Gallstedt M, Lindstrom T (2010) Oxygen and oil barrier properties of microfibrillated cellulose films and coatings. Cellulose 17:559–574CrossRef
Zurück zum Zitat Aulin C, Salazar-Alvarez G, Lindstrom T (2012) High strength, flexible and transparent nanofibrillated cellulose-nanoclay biohybrid films with tunable oxygen and water vapor permeability. Nanoscale 4:6622–6628CrossRef Aulin C, Salazar-Alvarez G, Lindstrom T (2012) High strength, flexible and transparent nanofibrillated cellulose-nanoclay biohybrid films with tunable oxygen and water vapor permeability. Nanoscale 4:6622–6628CrossRef
Zurück zum Zitat Beghello L (1998) Some factors that influence fiber flocculation. Nord Pulp Pap Res J 13:272–279 Beghello L (1998) Some factors that influence fiber flocculation. Nord Pulp Pap Res J 13:272–279
Zurück zum Zitat Beghello L, Long LY, Eklund D (1997) Laboratory study on carboxymethyl cellulose as a wet-end additive in paperboard making. Pap Puu 79:55–57 Beghello L, Long LY, Eklund D (1997) Laboratory study on carboxymethyl cellulose as a wet-end additive in paperboard making. Pap Puu 79:55–57
Zurück zum Zitat Blomstedt M (2007) Modification of cellulosic fibers by carboxymethyl cellulose-effects on fibers and sheet properties. Dissertation, Helsinki University of Technology Blomstedt M (2007) Modification of cellulosic fibers by carboxymethyl cellulose-effects on fibers and sheet properties. Dissertation, Helsinki University of Technology
Zurück zum Zitat Chen B, Zheng Q, Zhu J, Li J, Cai Z, Chen L, Gong S (2016) Mechanically strong fully biobased anisotropic cellulose aerogels. RSC Adv 6:96518–96526CrossRef Chen B, Zheng Q, Zhu J, Li J, Cai Z, Chen L, Gong S (2016) Mechanically strong fully biobased anisotropic cellulose aerogels. RSC Adv 6:96518–96526CrossRef
Zurück zum Zitat Dimic-Misic K, Salo T, Paltakari J, Gane P (2014) Comparing the rheological properties of novel nanofibrillar cellulose-formulated pigment coating colours with those using traditional thickener. Nord Pulp Pap Res J 29(2):253–270CrossRef Dimic-Misic K, Salo T, Paltakari J, Gane P (2014) Comparing the rheological properties of novel nanofibrillar cellulose-formulated pigment coating colours with those using traditional thickener. Nord Pulp Pap Res J 29(2):253–270CrossRef
Zurück zum Zitat Dufresne A (2012) Nanocellulose: from nature to high performance tailored materials. Walter de Gruyter GmbH 10 Dufresne A (2012) Nanocellulose: from nature to high performance tailored materials. Walter de Gruyter GmbH 10
Zurück zum Zitat Fendler A, Villanueva MP, Giminez E, Lagaron JM (2007) Characterization of the barrier properties of composites of HDPE and purified cellulose fibers. Cellulose 14:427–438CrossRef Fendler A, Villanueva MP, Giminez E, Lagaron JM (2007) Characterization of the barrier properties of composites of HDPE and purified cellulose fibers. Cellulose 14:427–438CrossRef
Zurück zum Zitat Hamada H, Bousfield DW (2010) Nanofibrillated cellulose as a coating agent to improve print quality of synthetic fiber sheets. Tappi J 9(11):25–29 Hamada H, Bousfield DW (2010) Nanofibrillated cellulose as a coating agent to improve print quality of synthetic fiber sheets. Tappi J 9(11):25–29
Zurück zum Zitat Hamada H, Mitsuhashi M (2016) Effect of cellulose nanofibers as a coating agent for woven and nonwoven fabrics. Nord Pulp Pap Res J 31(2):255–260CrossRef Hamada H, Mitsuhashi M (2016) Effect of cellulose nanofibers as a coating agent for woven and nonwoven fabrics. Nord Pulp Pap Res J 31(2):255–260CrossRef
Zurück zum Zitat Hassan EA, Hassan ML, Abou-zeid RE, El-Wakil NA (2016) Novel nanofibrillated cellulose/chitosan nanoparticles nanocomposites films and their use for paper coating. Ind Crops and Prod 93:219–226CrossRef Hassan EA, Hassan ML, Abou-zeid RE, El-Wakil NA (2016) Novel nanofibrillated cellulose/chitosan nanoparticles nanocomposites films and their use for paper coating. Ind Crops and Prod 93:219–226CrossRef
Zurück zum Zitat Johnson DA, Paradis MA, Bilodeau M, Crossley B, Foulger M, Gelinas P (2016) Effect of cellulosic nanofibrils on papermaking properties of fines papers. Tappi J 15(6):395–402 Johnson DA, Paradis MA, Bilodeau M, Crossley B, Foulger M, Gelinas P (2016) Effect of cellulosic nanofibrils on papermaking properties of fines papers. Tappi J 15(6):395–402
Zurück zum Zitat Kumar V, Bollstrom R, Yang A, Chen Q, Chen G, Salminen P, Bousfield DW, Toivakka M (2014) Comparison of nano and microfibrillated cellulose films. Cellulose 21:3443–3456CrossRef Kumar V, Bollstrom R, Yang A, Chen Q, Chen G, Salminen P, Bousfield DW, Toivakka M (2014) Comparison of nano and microfibrillated cellulose films. Cellulose 21:3443–3456CrossRef
Zurück zum Zitat Laine J, Lindstrom T, Nordmark GG, Risinger G (2002) Studies on the topochemical modification of cellulosic fibers. Nord Pulp Pap Res J 17:50–56CrossRef Laine J, Lindstrom T, Nordmark GG, Risinger G (2002) Studies on the topochemical modification of cellulosic fibers. Nord Pulp Pap Res J 17:50–56CrossRef
Zurück zum Zitat Laivins GV, Scallan AM (1996) The influence of drying and beating on the swelling of fines. J Pulp Paper Sci 22(5):178–184 Laivins GV, Scallan AM (1996) The influence of drying and beating on the swelling of fines. J Pulp Paper Sci 22(5):178–184
Zurück zum Zitat Lasseuguette E, Roux D, Nishiyama Y (2008) Rheological properties of microfibrillar suspension of TEMPO-oxidized pulp. Cellulose 15:425–433CrossRef Lasseuguette E, Roux D, Nishiyama Y (2008) Rheological properties of microfibrillar suspension of TEMPO-oxidized pulp. Cellulose 15:425–433CrossRef
Zurück zum Zitat Lavoine N, Desloges I, Dufresne A, Bras J (2012) Microfibrillated cellulose – Its barrier properties and applications in cellulosic materials: A review. Carbohydr Polym 90:735–764CrossRef Lavoine N, Desloges I, Dufresne A, Bras J (2012) Microfibrillated cellulose – Its barrier properties and applications in cellulosic materials: A review. Carbohydr Polym 90:735–764CrossRef
Zurück zum Zitat Lavoine N, Bras J, Desloges I (2014) Mechanical and barrier properties of cardboard and 3d packaging coated with microfibrillated cellulose. J Appl Polym Sci 131:40106CrossRef Lavoine N, Bras J, Desloges I (2014) Mechanical and barrier properties of cardboard and 3d packaging coated with microfibrillated cellulose. J Appl Polym Sci 131:40106CrossRef
Zurück zum Zitat Liimatainen H, Haavisto S, Haapala A, Niinimaki J (2009) Influence of adsorbed and dissolved carboxymethyl cellulose on fiber suspension dispersing, dewater ability, and fines retention. BioResources 4(1):321–340 Liimatainen H, Haavisto S, Haapala A, Niinimaki J (2009) Influence of adsorbed and dissolved carboxymethyl cellulose on fiber suspension dispersing, dewater ability, and fines retention. BioResources 4(1):321–340
Zurück zum Zitat Nazari B (2015) New applications for cellulose nanofibers: Rheological challenges. Dissertation, University of Maine Nazari B (2015) New applications for cellulose nanofibers: Rheological challenges. Dissertation, University of Maine
Zurück zum Zitat Nazari B, Bousfield DW (2016) Cellulose nanofibers influence on properties and processing of paperboard coating. Nord Pulp Pap Res J 31(3):511–520CrossRef Nazari B, Bousfield DW (2016) Cellulose nanofibers influence on properties and processing of paperboard coating. Nord Pulp Pap Res J 31(3):511–520CrossRef
Zurück zum Zitat Pahimanolis N, Salminen A, Penttila PA et al (2013) Nanofibrillated cellulose/carboxymethyl cellulose composite with improved wet strength. Cellulose 20:1459–1468CrossRef Pahimanolis N, Salminen A, Penttila PA et al (2013) Nanofibrillated cellulose/carboxymethyl cellulose composite with improved wet strength. Cellulose 20:1459–1468CrossRef
Zurück zum Zitat Paunonen S (2013) Strength and barrier enhancements of cellophane and cellulose derivative films: A review. BioResources 8(2):3098–3121CrossRef Paunonen S (2013) Strength and barrier enhancements of cellophane and cellulose derivative films: A review. BioResources 8(2):3098–3121CrossRef
Zurück zum Zitat Rautkoski H, Pajari H, Koskela H, Sneck A, Moilanen P (2015) Use of cellulose nanofibrils (CNF) in coating colors. Nord Pulp Pap Res J 30(3):511–518CrossRef Rautkoski H, Pajari H, Koskela H, Sneck A, Moilanen P (2015) Use of cellulose nanofibrils (CNF) in coating colors. Nord Pulp Pap Res J 30(3):511–518CrossRef
Zurück zum Zitat Rezayati Charani P, Dehghani-Firouzabadi M, Afra E, Blademo A, Naderi A, Lindstrom T (2013) Production of microfibrillated cellulose from unbleached kraft pulp of Kenaf and Scotch Pine and its effect on the properties of hardwood kraft: microfibrillated cellulose paper. Cellulose 20:2559–2567CrossRef Rezayati Charani P, Dehghani-Firouzabadi M, Afra E, Blademo A, Naderi A, Lindstrom T (2013) Production of microfibrillated cellulose from unbleached kraft pulp of Kenaf and Scotch Pine and its effect on the properties of hardwood kraft: microfibrillated cellulose paper. Cellulose 20:2559–2567CrossRef
Zurück zum Zitat Richmond F, Haugwout C, Bousfield DW (2014) The use of cellulose nanofibers in paper coating formulation. TAPPI Paper Con Richmond F, Haugwout C, Bousfield DW (2014) The use of cellulose nanofibers in paper coating formulation. TAPPI Paper Con
Zurück zum Zitat Schenker M, Schoelkopf J, Mangin P, Gane P (2016) Rheological investigation of complex micro and nanofibrillated cellulose (MNFC) suspension: Discussion of flow curves and gel stability. Tappi J 15(6):405–416 Schenker M, Schoelkopf J, Mangin P, Gane P (2016) Rheological investigation of complex micro and nanofibrillated cellulose (MNFC) suspension: Discussion of flow curves and gel stability. Tappi J 15(6):405–416
Zurück zum Zitat Song Z, Xiao H, Zhao Y (2014) Hydrophobic-modified nano-cellulose fiber/PLA biodegradable composites for lowering water vapor transmission rate (WVTR) of paper. Carbohydr Polym 111:442–448CrossRef Song Z, Xiao H, Zhao Y (2014) Hydrophobic-modified nano-cellulose fiber/PLA biodegradable composites for lowering water vapor transmission rate (WVTR) of paper. Carbohydr Polym 111:442–448CrossRef
Zurück zum Zitat Song Z, Xiao H, Li Y (2015) Effects of renewable materials coating on oil resistant properties of paper. Nord Pulp Pap Res J 30:344–349CrossRef Song Z, Xiao H, Li Y (2015) Effects of renewable materials coating on oil resistant properties of paper. Nord Pulp Pap Res J 30:344–349CrossRef
Zurück zum Zitat Syverud K, Stenius P (2009) Strength and barrier properties of MFC films. Cellulose 16:75–85CrossRef Syverud K, Stenius P (2009) Strength and barrier properties of MFC films. Cellulose 16:75–85CrossRef
Zurück zum Zitat Taniguchi T, Okamura K (1998) New films produced from microfibrillated natural fibers. Polym Int 47:291–294CrossRef Taniguchi T, Okamura K (1998) New films produced from microfibrillated natural fibers. Polym Int 47:291–294CrossRef
Zurück zum Zitat TAPPI Standard Test Method for Grease Resistance Test for Paper and Paperboard (1996) Tappi press. Atlanta, GA TAPPI Standard Test Method for Grease Resistance Test for Paper and Paperboard (1996) Tappi press. Atlanta, GA
Zurück zum Zitat TAPPI Standard Test Method for Size Test for Paper by Ink Resistance (Hercules type method) (2007) Tappi press. Atlanta, GA TAPPI Standard Test Method for Size Test for Paper by Ink Resistance (Hercules type method) (2007) Tappi press. Atlanta, GA
Zurück zum Zitat TAPPI Standard Test Method Gravimetric Methods for Measuring Dewatering of Coating Colors (Abo-Academi-type methods) (2001) Tappi press. Atlanta, GA TAPPI Standard Test Method Gravimetric Methods for Measuring Dewatering of Coating Colors (Abo-Academi-type methods) (2001) Tappi press. Atlanta, GA
Zurück zum Zitat TAPPI Standrd Test Method for Air Resistance of Paper (Gurley method) (2006) Tappi press. Atlanta, GA TAPPI Standrd Test Method for Air Resistance of Paper (Gurley method) (2006) Tappi press. Atlanta, GA
Zurück zum Zitat Turbak AF, Snyder FW, Sandberg KR (1983) Microfibrillated cellulose, a new cellulose product: properties, uses, and commercial potential. J Appl Polym Sci Symp 37:815–827 Turbak AF, Snyder FW, Sandberg KR (1983) Microfibrillated cellulose, a new cellulose product: properties, uses, and commercial potential. J Appl Polym Sci Symp 37:815–827
Zurück zum Zitat Xu Y, Kuang Y, Salminen P, Chen G (2016) The influence of nano-fibrillated cellulose as a coating component in paper coating. BioResources 11(2):4342–4352 Xu Y, Kuang Y, Salminen P, Chen G (2016) The influence of nano-fibrillated cellulose as a coating component in paper coating. BioResources 11(2):4342–4352
Zurück zum Zitat Yan H, Lindstrom T, Christiernin M (2006) Some ways to decrease fiber suspension flocculation and improve sheet formation. Nord Pulp Pap Res J 21:36–43CrossRef Yan H, Lindstrom T, Christiernin M (2006) Some ways to decrease fiber suspension flocculation and improve sheet formation. Nord Pulp Pap Res J 21:36–43CrossRef
Zurück zum Zitat Yousefi H, Faezipour M, Hedjazi S, Mazhari Mousavi M, Azusa Y, Heidari A (2013) Comparative study of paper and nanopaper properties prepared from bacterial cellulose nanofibers and fiber/ground cellulose nanofibers of canola straw. Ind Crops and Prod 43:732–737CrossRef Yousefi H, Faezipour M, Hedjazi S, Mazhari Mousavi M, Azusa Y, Heidari A (2013) Comparative study of paper and nanopaper properties prepared from bacterial cellulose nanofibers and fiber/ground cellulose nanofibers of canola straw. Ind Crops and Prod 43:732–737CrossRef
Zurück zum Zitat Zimmermann T, Bordeanu N, Strub E (2010) Properties of nanofibrillated cellulose from different raw materials and its reinforcement potential. Carbohydr Polym 79(4):1086–1093CrossRef Zimmermann T, Bordeanu N, Strub E (2010) Properties of nanofibrillated cellulose from different raw materials and its reinforcement potential. Carbohydr Polym 79(4):1086–1093CrossRef
Metadaten
Titel
Cellulose nanofiber/carboxymethyl cellulose blends as an efficient coating to improve the structure and barrier properties of paperboard
verfasst von
S. M. Mazhari Mousavi
E. Afra
M. Tajvidi
D. W. Bousfield
M. Dehghani-Firouzabadi
Publikationsdatum
27.04.2017
Verlag
Springer Netherlands
Erschienen in
Cellulose / Ausgabe 7/2017
Print ISSN: 0969-0239
Elektronische ISSN: 1572-882X
DOI
https://doi.org/10.1007/s10570-017-1299-5

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