Skip to main content
Erschienen in: Cellulose 4/2016

22.06.2016 | Original Paper

Nanofibrillated cellulose/nanographite composite films

verfasst von: Sinke H. Osong, Christina Dahlström, Sven Forsberg, Britta Andres, Per Engstrand, Sven Norgren, Ann-Christine Engström

Erschienen in: Cellulose | Ausgabe 4/2016

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

Though research into nanofibrillated cellulose (NFC) has recently increased, few studies have considered co-utilising NFC and nanographite (NG) in composite films, and, it has, however been a challenge to use high-yield pulp fibres (mechanical pulps) to produce this nanofibrillar material. It is worth noting that there is a significant difference between chemical pulp fibres and high-yield pulp fibres, as the former is composed mainly of cellulose and has a yield of approximately 50 % while the latter is consist of cellulose, hemicellulose and lignin, and has a yield of approximately 90 %. NFC was produced by combining TEMPO (2,2,6,6-tetramethypiperidine-1-oxyl)-mediated oxidation with the mechanical shearing of chemi-thermomechanical pulp (CTMP) and sulphite pulp (SP); the NG was produced by mechanically exfoliating graphite. The different NaClO dosages in the TEMPO system differently oxidised the fibres, altering their fibrillation efficiency. NFC–NG films were produced by casting in a Petri dish. We examine the effect of NG on the sheet-resistance and mechanical properties of NFC films. Addition of 10 wt% NG to 90 wt% NFC of sample CC2 (5 mmol NaClO CTMP-NFC homogenised for 60 min) improved the sheet resistance, i.e. from that of an insulating pure NFC film to 180 Ω/sq. Further addition of 20 (CC3) and 25 wt% (CC4) of NG to 80 and 75 wt% respectively, lowered the sheet resistance to 17 and 9 Ω/sq, respectively. For the mechanical properties, we found that adding 10 wt% NG to 90 wt% NFC of sample HH2 (5 mmol NaClO SP-NFC homogenised for 60 min) improved the tensile index by 28 %, tensile stiffness index by 20 %, and peak load by 28 %. The film’s surface morphology was visualised using scanning electron microscopy, revealing the fibrillated structure of NFC and NG. This methodology yields NFC–NG films that are mechanically stable, bendable, and flexible.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Literatur
Zurück zum Zitat Abdul Khalil HPS, Bhat AH, Ireana Yusra AF (2012) Green composites from sustainable cellulose nanofibrils: a review. Carbohydr Polym 87(2):963–979CrossRef Abdul Khalil HPS, Bhat AH, Ireana Yusra AF (2012) Green composites from sustainable cellulose nanofibrils: a review. Carbohydr Polym 87(2):963–979CrossRef
Zurück zum Zitat Andres B, Forsberg S, Dahlström C, Blomquist N, Olin H (2014) Enhanced electrical and mechanical properties of nanographite electrodes for supercapacitors by addition of nanofibrillated cellulose. Phys Status Solidi B 251(12):2581–2586CrossRef Andres B, Forsberg S, Dahlström C, Blomquist N, Olin H (2014) Enhanced electrical and mechanical properties of nanographite electrodes for supercapacitors by addition of nanofibrillated cellulose. Phys Status Solidi B 251(12):2581–2586CrossRef
Zurück zum Zitat Carrasco PM, Montes S, Garcia I, Borghei M, Jiang H, Odriozola I, Cabanero G, Ruiz V (2014) High-concentration aqueous dispersions of graphene produced by exfoliation of graphite using cellulose nanocrystals. Carbon 70:157–163CrossRef Carrasco PM, Montes S, Garcia I, Borghei M, Jiang H, Odriozola I, Cabanero G, Ruiz V (2014) High-concentration aqueous dispersions of graphene produced by exfoliation of graphite using cellulose nanocrystals. Carbon 70:157–163CrossRef
Zurück zum Zitat De Nooy AEJ, Besemer AC, Van Bekkum H (1995) Highly selective nitroxyl radical-mediated oxidation of primary alcohol groups in water-soluble glucans. Carbohydr Res 269(1):89–98CrossRef De Nooy AEJ, Besemer AC, Van Bekkum H (1995) Highly selective nitroxyl radical-mediated oxidation of primary alcohol groups in water-soluble glucans. Carbohydr Res 269(1):89–98CrossRef
Zurück zum Zitat Eda G, Chhowalla M (2009) Graphene-based composite thin films for electronics. Nano Lett 9(2):814–818CrossRef Eda G, Chhowalla M (2009) Graphene-based composite thin films for electronics. Nano Lett 9(2):814–818CrossRef
Zurück zum Zitat Fall AB, Lindström SB, Sundman O, Ödberg L, Wågberg L (2011) Colloidal stability of aqueous nanofibrillated cellulose dispersions. Langmuir 27(18):11332–11338CrossRef Fall AB, Lindström SB, Sundman O, Ödberg L, Wågberg L (2011) Colloidal stability of aqueous nanofibrillated cellulose dispersions. Langmuir 27(18):11332–11338CrossRef
Zurück zum Zitat Herrick FW, Casebier RL, Hamilton JK, Sandberg KR (1983) Microfibrillated cellulose: morphology and accessibility. J Appl Polym Sci Symp 37:797–813 Herrick FW, Casebier RL, Hamilton JK, Sandberg KR (1983) Microfibrillated cellulose: morphology and accessibility. J Appl Polym Sci Symp 37:797–813
Zurück zum Zitat Hubbe MA, Rojas OJ, Lucia LA, Sain M (2008) Cellulosic nanocomposites: a review. BioResources 3(3):929–980 Hubbe MA, Rojas OJ, Lucia LA, Sain M (2008) Cellulosic nanocomposites: a review. BioResources 3(3):929–980
Zurück zum Zitat Kim H, Miura Y, Macosko CW (2010) Graphene/polyurethane nanocomposites for improved gas barrier and electrical conductivity. Chem Mater 22:3441–3450CrossRef Kim H, Miura Y, Macosko CW (2010) Graphene/polyurethane nanocomposites for improved gas barrier and electrical conductivity. Chem Mater 22:3441–3450CrossRef
Zurück zum Zitat Kiziltas EE, Kiziltas A, Rhodes K, Emanetoglue NW, Blumentritt M, Gardner DJ (2016) Electrically conductive nano graphite-filled bacterial cellulose composites. Carbohydr Polym 136:1144–1151CrossRef Kiziltas EE, Kiziltas A, Rhodes K, Emanetoglue NW, Blumentritt M, Gardner DJ (2016) Electrically conductive nano graphite-filled bacterial cellulose composites. Carbohydr Polym 136:1144–1151CrossRef
Zurück zum Zitat Klemm D, Kramer F, Moritz S, Lindström T, Ankerfors M, Gray D, Dorris A (2011) Nanocelluloses: a new family of nature-based materials. Angew Chem Int Edit 50(24):5438–5466CrossRef Klemm D, Kramer F, Moritz S, Lindström T, Ankerfors M, Gray D, Dorris A (2011) Nanocelluloses: a new family of nature-based materials. Angew Chem Int Edit 50(24):5438–5466CrossRef
Zurück zum Zitat Li Y, Zhu H, Zhu S, Wan J, Liu Z, Vaaland O, Lacey S, Fang Z, Dai H, Li T, Hu L (2015) Hybridizing wood cellulose and graphene oxide toward high-performance fibers. NPG Asia Mater 7:1–10 Li Y, Zhu H, Zhu S, Wan J, Liu Z, Vaaland O, Lacey S, Fang Z, Dai H, Li T, Hu L (2015) Hybridizing wood cellulose and graphene oxide toward high-performance fibers. NPG Asia Mater 7:1–10
Zurück zum Zitat Luong ND, Pahimanolis N, Hippi U, Korhonen JT, Ruokolainen J, Johansson L-S, Nam J-D, Seppälä J (2011) Graphene/cellulose nanocomposite paper with high electrical and mechanical performances. J Mater Chem 21:13991–13998CrossRef Luong ND, Pahimanolis N, Hippi U, Korhonen JT, Ruokolainen J, Johansson L-S, Nam J-D, Seppälä J (2011) Graphene/cellulose nanocomposite paper with high electrical and mechanical performances. J Mater Chem 21:13991–13998CrossRef
Zurück zum Zitat Ma P, Zhai H (2013) Selective TEMPO-mediated oxidation of thermomechanical pulp. BioResources 8(3):4396–4405CrossRef Ma P, Zhai H (2013) Selective TEMPO-mediated oxidation of thermomechanical pulp. BioResources 8(3):4396–4405CrossRef
Zurück zum Zitat Malho J-M, Laaksonen P, Walther A, Ikkala O, Linder MB (2012) Facile method for stiff, tough, and strong nanocomposites by direct exfoliation of multilayered graphene into native nanocellulose matrix. Biomacromolecules 13:1093–1099CrossRef Malho J-M, Laaksonen P, Walther A, Ikkala O, Linder MB (2012) Facile method for stiff, tough, and strong nanocomposites by direct exfoliation of multilayered graphene into native nanocellulose matrix. Biomacromolecules 13:1093–1099CrossRef
Zurück zum Zitat Novoselov KS, Fal’ko VI, Colombo L, Gellert PR, Schwab MG, Kim K (2012) A roadmap for graphene. Nature 490:192–200CrossRef Novoselov KS, Fal’ko VI, Colombo L, Gellert PR, Schwab MG, Kim K (2012) A roadmap for graphene. Nature 490:192–200CrossRef
Zurück zum Zitat Okita Y, Saito T, Isogai A (2009) TEMPO-mediated oxidation of softwood thermomechanical pulp. Holzforschung 63:529–535CrossRef Okita Y, Saito T, Isogai A (2009) TEMPO-mediated oxidation of softwood thermomechanical pulp. Holzforschung 63:529–535CrossRef
Zurück zum Zitat Saito T, Nishiyama Y, Putaux JL, 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 JL, Vignon M, Isogai A (2006) Homogeneous suspensions of individualized microfibrils from TEMPO-catalyzed oxidation of native cellulose. Biomacromolecules 7:1687–1691CrossRef
Zurück zum Zitat Siró I, Plackett D (2010) Microfibrillated cellulose and new nanocomposite materials: a review. Cellulose 17(3):459–494CrossRef Siró I, Plackett D (2010) Microfibrillated cellulose and new nanocomposite materials: a review. Cellulose 17(3):459–494CrossRef
Zurück zum Zitat Stankovich S, Dikin DA, Dommett GHB, Kohlhaas KM, Zimney EJ, Stach EA, Piner RD, Nguyen ST, Ruoff RS (2006) Graphene-based composite materials. Nature 442:282–286CrossRef Stankovich S, Dikin DA, Dommett GHB, Kohlhaas KM, Zimney EJ, Stach EA, Piner RD, Nguyen ST, Ruoff RS (2006) Graphene-based composite materials. Nature 442:282–286CrossRef
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 Appl Polym 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 Appl Polym Symp 37:815–827
Zurück zum Zitat Wang F, Drzal LT, Qin Y, Huang Z (2015) Multifunctional graphene nanoplatelets/cellulose nanocrystals composite paper. Compos B 79:521–529CrossRef Wang F, Drzal LT, Qin Y, Huang Z (2015) Multifunctional graphene nanoplatelets/cellulose nanocrystals composite paper. Compos B 79:521–529CrossRef
Zurück zum Zitat Yan C, Wang J, Kang W, Cui M, Wang X, Foo CY, Chee KJ, Lee PS (2014) Highly stretchable piezoresistive graphene–nanocellulose nanopaper for strain sensors. Adv Mater 26:2022–2027CrossRef Yan C, Wang J, Kang W, Cui M, Wang X, Foo CY, Chee KJ, Lee PS (2014) Highly stretchable piezoresistive graphene–nanocellulose nanopaper for strain sensors. Adv Mater 26:2022–2027CrossRef
Metadaten
Titel
Nanofibrillated cellulose/nanographite composite films
verfasst von
Sinke H. Osong
Christina Dahlström
Sven Forsberg
Britta Andres
Per Engstrand
Sven Norgren
Ann-Christine Engström
Publikationsdatum
22.06.2016
Verlag
Springer Netherlands
Erschienen in
Cellulose / Ausgabe 4/2016
Print ISSN: 0969-0239
Elektronische ISSN: 1572-882X
DOI
https://doi.org/10.1007/s10570-016-0990-2

Weitere Artikel der Ausgabe 4/2016

Cellulose 4/2016 Zur Ausgabe