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Erschienen in: Cellulose 5/2014

01.10.2014 | Original Paper

Cationic wood cellulose films with high strength and bacterial anti-adhesive properties

verfasst von: Juho Antti Sirviö, Anna-Kaisa Anttila, Anna Maria Pirttilä, Henrikki Liimatainen, Ilkka Kilpeläinen, Jouko Niinimäki, Osmo Hormi

Erschienen in: Cellulose | Ausgabe 5/2014

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Abstract

In this work, periodate oxidized birch wood pulp and microfibrillated cellulose (MFC) were cationized using Girard’s reagent T or aminoguanidine. Cationic celluloses were used to obtain films via solvent-casting method, and the effects of the cationization route and the cellulose fiber source on the properties of the films were studied. Thermal and optical properties of the films were measured using differential scanning calorimetry and UV–Vis spectrometry, and the morphology of the films was examined using an optical microscope and a field emission scanning electron microscope. Bacterial anti-adhesive properties of the films were also studied using a modified leaf print method and against Staphylococcus aureus and Escherichia coli. Both cationizing agents exhibited similar reactivity with periodate oxidized celluloses, however, MFC had significantly higher reactivity compared to birch pulp. The films with high tensile strength (39.1–45.3 MPa) and modulus (3.5–7.3 GPa) were obtained from cationized birch pulp, aminoguanidine modification producing a film with slightly better mechanical properties. Modulus of the films was significantly increased (up to 14.0 GPa) when MFC was used as a cellulose fiber source. Compared to the unmodified MFC films, the cationic MFC films were less porous and significantly more transparent; however, they had slightly lower tensile strength values. It was found that aminoguanidine modified celluloses had no culturable bacteria on its surface and also exhibited resistance to microbial degradation, whereas there were culturable bacteria on the surface of Girard’s reagent modified films and they were partially degraded by the bacteria.

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Literatur
Zurück zum Zitat Clayden J, Greeves N, Warren S, Wothers P (2001) Organic chemistry. Oxford University Press, New York Clayden J, Greeves N, Warren S, Wothers P (2001) Organic chemistry. Oxford University Press, New York
Zurück zum Zitat Crescenzi V, Dentini M, Meoli C, Casu B, Naggi A, Torri G (1984) Dicarboxyamylose and dicarboxycellulose, stereoregular polyelectrolytes: binding of calcium and magnesium ions. Int J Biol Macromol 6:142–144CrossRef Crescenzi V, Dentini M, Meoli C, Casu B, Naggi A, Torri G (1984) Dicarboxyamylose and dicarboxycellulose, stereoregular polyelectrolytes: binding of calcium and magnesium ions. Int J Biol Macromol 6:142–144CrossRef
Zurück zum Zitat French AD (2014) Idealized powder diffraction patterns for cellulose polymorphs. Cellulose 21:885–896CrossRef French AD (2014) Idealized powder diffraction patterns for cellulose polymorphs. Cellulose 21:885–896CrossRef
Zurück zum Zitat Han S, Lee M, Kim BK (2010) Crosslinking reactions of oxidized cellulose fibers. I. Reactions between dialdehyde cellulose and multifunctional amines on lyocell fabric. J Appl Polym Sci 117:682–690CrossRef Han S, Lee M, Kim BK (2010) Crosslinking reactions of oxidized cellulose fibers. I. Reactions between dialdehyde cellulose and multifunctional amines on lyocell fabric. J Appl Polym Sci 117:682–690CrossRef
Zurück zum Zitat Hearon WM, Witte JF, Lo CF (1978) Process for the production of dialdehyde cellulose from cellulose. US Patent 4,082,743 Hearon WM, Witte JF, Lo CF (1978) Process for the production of dialdehyde cellulose from cellulose. US Patent 4,082,743
Zurück zum Zitat Hirano SS, Upper CD (1983) Ecology and epidemiology of foliar bacterial plant pathogens. Annu Rev Phytopathol 21:243–269CrossRef Hirano SS, Upper CD (1983) Ecology and epidemiology of foliar bacterial plant pathogens. Annu Rev Phytopathol 21:243–269CrossRef
Zurück zum Zitat Hou QX, Liu W, Liu Z, Bai LL (2007) Characteristics of wood cellulose fibers treated with periodate and bisulfite. Ind Eng Chem Res 46:7830–7837CrossRef Hou QX, Liu W, Liu Z, Bai LL (2007) Characteristics of wood cellulose fibers treated with periodate and bisulfite. Ind Eng Chem Res 46:7830–7837CrossRef
Zurück zum Zitat Jackson EL, Hudson CS (1937) Application of the cleavage type of oxidation by periodic acid to starch and cellulose. J Am Chem Soc 59:2049–2250CrossRef Jackson EL, Hudson CS (1937) Application of the cleavage type of oxidation by periodic acid to starch and cellulose. J Am Chem Soc 59:2049–2250CrossRef
Zurück zum Zitat Kamide K (2005) Cellulose and cellulose derivatives: molecular characterization and its applications. Elsevier, Amsterdam Kamide K (2005) Cellulose and cellulose derivatives: molecular characterization and its applications. Elsevier, Amsterdam
Zurück zum Zitat Kim U-J, Kuga S (2001a) Ion-exchange chromatography by dicarboxyl cellulose gel. J Chromatogr A 919:29–37CrossRef Kim U-J, Kuga S (2001a) Ion-exchange chromatography by dicarboxyl cellulose gel. J Chromatogr A 919:29–37CrossRef
Zurück zum Zitat Kim U-J, Kuga K (2001b) Thermal decomposition of dialdehyde cellulose and its nitrogen-containing derivates. Thermchim Acta 369:79–85CrossRef Kim U-J, Kuga K (2001b) Thermal decomposition of dialdehyde cellulose and its nitrogen-containing derivates. Thermchim Acta 369:79–85CrossRef
Zurück zum Zitat Liimatainen H, Sirviö J, Sundman O, Visanko M, Hormi O, Niinimäki J (2011a) Flocculation performance of a cationic biopolymer derived from a cellulosic source in mild aqueous solution. Bioresour Technol 102:9626–9632CrossRef Liimatainen H, Sirviö J, Sundman O, Visanko M, Hormi O, Niinimäki J (2011a) Flocculation performance of a cationic biopolymer derived from a cellulosic source in mild aqueous solution. Bioresour Technol 102:9626–9632CrossRef
Zurück zum Zitat Liimatainen H, Sirviö J, Haapala A, Hormi O, Niinimäki J (2011b) Characterization of highly accessible cellulose microfibers generated by wet stirred media milling. Carbohydr Polym 83:2005–2010CrossRef Liimatainen H, Sirviö J, Haapala A, Hormi O, Niinimäki J (2011b) Characterization of highly accessible cellulose microfibers generated by wet stirred media milling. Carbohydr Polym 83:2005–2010CrossRef
Zurück zum Zitat Liimatainen H, Sirviö J, Sundman O, Hormi O, Niinimäki J (2012a) Use of nanoparticular and soluble anionic celluloses in coagulation–flocculation treatment of kaolin suspension. Water Res 46:2159–2166CrossRef Liimatainen H, Sirviö J, Sundman O, Hormi O, Niinimäki J (2012a) Use of nanoparticular and soluble anionic celluloses in coagulation–flocculation treatment of kaolin suspension. Water Res 46:2159–2166CrossRef
Zurück zum Zitat Liimatainen H, Visanko M, Sirviö JA, Hormi OEO, Niinimaki J (2012b) Enhancement of the nanofibrillation of wood cellulose through sequential periodate–chlorite oxidation. Biomacromolecules 13:1592–1597CrossRef Liimatainen H, Visanko M, Sirviö JA, Hormi OEO, Niinimaki J (2012b) Enhancement of the nanofibrillation of wood cellulose through sequential periodate–chlorite oxidation. Biomacromolecules 13:1592–1597CrossRef
Zurück zum Zitat Liimatainen H, Sirviö J, Pajari H, Hormi O, Niinimaki J (2013) Regeneration and recycling of aqueous periodate solution in dialdehyde cellulose production. J Wood Chem Technol 33:258–266CrossRef Liimatainen H, Sirviö J, Pajari H, Hormi O, Niinimaki J (2013) Regeneration and recycling of aqueous periodate solution in dialdehyde cellulose production. J Wood Chem Technol 33:258–266CrossRef
Zurück zum Zitat Liu X, Wang L, Song X, Song H, Zhao JR, Wang S (2012) A kinetic model for oxidative degradation of bagasse pulp fiber by sodium periodate. Carbohydr Polym 90:218–223CrossRef Liu X, Wang L, Song X, Song H, Zhao JR, Wang S (2012) A kinetic model for oxidative degradation of bagasse pulp fiber by sodium periodate. Carbohydr Polym 90:218–223CrossRef
Zurück zum Zitat Maekawa E, Koshijima T (1991) Preparation and structural consideration of nitrogen-containing derivatives obtained from dialdehyde celluloses. J Appl Polym Sci 42:169–178CrossRef Maekawa E, Koshijima T (1991) Preparation and structural consideration of nitrogen-containing derivatives obtained from dialdehyde celluloses. J Appl Polym Sci 42:169–178CrossRef
Zurück zum Zitat Sirvio J, Hyvakko U, Liimatainen H, Niinimaki J, Hormi O (2011) Periodate oxidation of cellulose at elevated temperatures using metal salts as cellulose activators. Carbohydr Polym 83:1293–1297CrossRef Sirvio J, Hyvakko U, Liimatainen H, Niinimaki J, Hormi O (2011) Periodate oxidation of cellulose at elevated temperatures using metal salts as cellulose activators. Carbohydr Polym 83:1293–1297CrossRef
Zurück zum Zitat Sirviö J, Honka A, Liimatainen H, Niinimäki J, Hormi O (2011a) Synthesis of highly cationic water-soluble cellulose derivative and its potential as novel biopolymeric flocculation agent. Carbohydr Polym 86:266–270CrossRef Sirviö J, Honka A, Liimatainen H, Niinimäki J, Hormi O (2011a) Synthesis of highly cationic water-soluble cellulose derivative and its potential as novel biopolymeric flocculation agent. Carbohydr Polym 86:266–270CrossRef
Zurück zum Zitat Sirviö J, Liimatainen H, Niinimäki J, Hormi O (2011b) Dialdehyde cellulose microfibers generated from wood pulp by milling-induced periodate oxidation. Carbohydr Polym 86:260–265CrossRef Sirviö J, Liimatainen H, Niinimäki J, Hormi O (2011b) Dialdehyde cellulose microfibers generated from wood pulp by milling-induced periodate oxidation. Carbohydr Polym 86:260–265CrossRef
Zurück zum Zitat Sirviö JA, Liimatainen H, Niinimäki J, Hormi O (2013a) Sustainable packaging materials based on wood cellulose. RSC Adv 3:16590–16596CrossRef Sirviö JA, Liimatainen H, Niinimäki J, Hormi O (2013a) Sustainable packaging materials based on wood cellulose. RSC Adv 3:16590–16596CrossRef
Zurück zum Zitat Sirviö JA, Kolehmainen A, Liimatainen H, Niinimäki J, Hormi O (2013b) Biocomposite cellulose–alginate films: promising packaging materials. Food Chem 151:343–351 Sirviö JA, Kolehmainen A, Liimatainen H, Niinimäki J, Hormi O (2013b) Biocomposite cellulose–alginate films: promising packaging materials. Food Chem 151:343–351
Zurück zum Zitat Soares S, Camino G, Levchik S (1995) Comparative study of the thermal decomposition of pure cellulose and pulp paper. Polym Degrad Stab 49:275–283CrossRef Soares S, Camino G, Levchik S (1995) Comparative study of the thermal decomposition of pure cellulose and pulp paper. Polym Degrad Stab 49:275–283CrossRef
Zurück zum Zitat Tejado A, Alam MN, Antal M, Yang H, van de Ven TGM (2012) Energy requirements for the disintegration of cellulose fibers into cellulose nanofibers. Cellulose 19:831–842CrossRef Tejado A, Alam MN, Antal M, Yang H, van de Ven TGM (2012) Energy requirements for the disintegration of cellulose fibers into cellulose nanofibers. Cellulose 19:831–842CrossRef
Zurück zum Zitat Van Brussel-Verraest DL, Besemer AC, Thiewes HJ, Verwillingen A-MY (2003) Cationic cellulosic fibers for paper making. Patent no. 259 WO03006739, 2003 Van Brussel-Verraest DL, Besemer AC, Thiewes HJ, Verwillingen A-MY (2003) Cationic cellulosic fibers for paper making. Patent no. 259 WO03006739, 2003
Zurück zum Zitat Vicini S, Princi E, Luciano G, Franceschi E, Pedemonte E, Oldak D, Kaczmarek H, Sionkowska A (2004) Thermal analysis and characterization of cellulose oxidized with sodium methaperiodate. Thermochim Acta 418:123–130CrossRef Vicini S, Princi E, Luciano G, Franceschi E, Pedemonte E, Oldak D, Kaczmarek H, Sionkowska A (2004) Thermal analysis and characterization of cellulose oxidized with sodium methaperiodate. Thermochim Acta 418:123–130CrossRef
Zurück zum Zitat Zhang Y, Jiang J, Chen Y (1999) Synthesis and antimicrobial activity of polymeric guanidine and biguanidine salts. Polymer 40:6189–6198CrossRef Zhang Y, Jiang J, Chen Y (1999) Synthesis and antimicrobial activity of polymeric guanidine and biguanidine salts. Polymer 40:6189–6198CrossRef
Metadaten
Titel
Cationic wood cellulose films with high strength and bacterial anti-adhesive properties
verfasst von
Juho Antti Sirviö
Anna-Kaisa Anttila
Anna Maria Pirttilä
Henrikki Liimatainen
Ilkka Kilpeläinen
Jouko Niinimäki
Osmo Hormi
Publikationsdatum
01.10.2014
Verlag
Springer Netherlands
Erschienen in
Cellulose / Ausgabe 5/2014
Print ISSN: 0969-0239
Elektronische ISSN: 1572-882X
DOI
https://doi.org/10.1007/s10570-014-0351-y

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