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Original Article | Open Access

Conductive Polyaniline/Cellulose/Graphite Composite Films with High Thermal Stability and Antibacterial Activity

JingHuan Chen1,2JinGang Liu1WenTao Zhang2Kun Wang2XueRen Qian3RunCang Sun2( )
National Engineering Laboratory of Pulping and Papermaking, China National Pulp and Paper Research Institute, Beijing, 100102, China
Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing, 100083, China
Key Laboratory of Bio-Based Material Science and Technology of Ministry of Education, Northeast Forestry University, Harbin, Heilongjiang Province, 150040, China
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Abstract

Functional composite films were successfully prepared from cellulose, graphite(GP), and polyaniline(PANI) using a combination of physical and chemical processes. Cellulosewasdissolved in N-methylmorpholine-N-oxide monohydrate(NMMO) and regenerated in water to form the matrix. GP was dispersed in the NMMO solvent prior to the dissolution of the cellulose, and PANI was deposited on the surfaces of the cellulose/GP films by in situ chemical polymerization. The structures of the PANI/cellusose/GP composite films were investigated using X-ray diffraction analysis, Fourier transform infrared spectroscopy, scanning electron microscopy(SEM), and SEM/energy-dispersive X-ray spectroscopy. The mechanical strengths, thermal stabilities, conductivities, and antibacterial activities of the films were studied in detail. The results showed that GP formed a multilayered structure in the cellulose matrix and that the PANI nanoparticles were tightly wrapped on the film surface. The film thickness increased from 40 mm to 100 mm after the addition of GP and PANI. The tensile strength of the composite films was 80~107 MPa, with the elongation at break being 3%~10%. The final residual weight of the composite films was as high as 65%, and the conductivity of the composite films reached 14.36 S/m. The cellulose matrix ensured that the films were flexible and exhibited desirable mechanical properties, while the GP filler significantly improved the thermal stability of the films. The PANI coating acted as a protective layer during burning and provided good electrical conductivity and antibacterial activity against Escherichia coli; both of these characteristics were slightly enhanced by the incorporation of GP. These PANI/cellulose/GP composite films should be suitable for use in electronics, antistatic packing, and numerous other applications.

References

[1]

Ameen S, Shaheer Akhtar M, Husain M. A Review on Synthesis Processing, Chemical and Conduction Properties of Polyaniline and Its Nanocomposites[J]. Sci Adv Mater, 2010, 2(4): 441-462.

[2]

Bogdanovic U, Vodnik V, Mitric M, et al. Nanomaterial with high antimicrobial efficacy——copper/polyaniline nanocomposite[J]. Acs Appl Mater Inter, 2015, 7(3): 1955-1966.

[3]

Seshadri D T, Bhat N V. Use of polyaniline as an antimicrobial agent in textiles[J]. Indian J Fibre Text Res, 2005, 30(2): 204-206.

[4]

Huang J, Kaner R B. The intrinsic nanofibrillar morphology of polyaniline[J]. Chem Commun, 2006, 4(4): 367-376.

[5]

Gizdavic-Nikolaidis M R, Bennett J R, Swift S, et al. Broad spectrum antimicrobial activity of functionalized polyanilines[J]. Acta Biomater, 2011, 7(12): 4204-4209.

[6]

Kucekova Z, Humpolicek P, Kasparkova V, et al. Colloidal polyaniline dispersions: Antibacterial activity, cytotoxicity and neutrophil oxidative burst[J]. Colloid Surface B, 2014, 116(14): 411-417.

[7]

Zhang L J, Wan M X, Wei Y. Nanoscaled polyaniline fibers prepared by ferric chloride as an oxidant[J]. Macromol Rapid Commun, 2006, 27(5): 366-371.

[8]

Wan M X. A template-free method towards conducting polymer nanostructures[J]. Adv Mater, 2008, 20(15): 2926-2932.

[9]

Ince A, Bayramoglu G, Karagoz B, et al. A method for fabrication of polyaniline coated polymer microspheres and its application for cellulase immobilization[J]. Chem Eng J, 2012, 189(2): 404-412.

[10]

Kim B, Koncar V, Dufour C. Polyaniline-coated PET conductive yarns: Study of electrical, mechanical, and electro-mechanical properties[J]. J Appl Polym Sci, 2006, 101(3): 1252-1256.

[11]

Chen D, Miao Y E, Liu T. Electrically conductive polyaniline/polyimide nanofiber membranes prepared via a combination of electrospinning and subsequent in situ polymerization growth[J]. Acs Appl Mate Inter, 2013, 5(4): 1206-1212.

[12]

de Castro R K, Araujo J R, Valaski R, et al. New transfer method of CVD-grown graphene using a flexible, transparent and conductive polyaniline-rubber thin film for organic electronic applications[J]. Chem Eng J, 2015, 273: 509-518.

[13]

Wu X D, Lu C H, Xu H Y, et al. Biotemplate synthesis of polyaniline@cellulose nanowhiskers/natural rubber nanocomposites with 3D hierarchical multiscale structure and improved electrical conductivity[J]. Acs Appl Mater Inter, 2014, 6(23): 21078-21085.

[14]

Mao H, Wu X N, Qian X R, et al. Conductivity and flame retardancy of polyaniline-deposited functional cellulosic paper doped with organic sulfonic acids[J]. Cellulose, 2013, 21(1): 697-704.

[15]

Wu X N, Qian X R, An X H. Flame retardancy of polyaniline-deposited paper composites prepared via in situ polymerization[J]. Carbohydr Polym, 2013, 92(1): 435-440.

[16]

Souza F G, Oliveira G E, Anzai T, et al. A sensor for acid concentration based on cellulose paper sheets modified with polyaniline nanoparticles[J]. Macromol Mater Eng, 2009, 294(11): 739-748.

[17]

Trey S, Jafarzadeh S, Johansson M. In situ polymerization of polyaniline in wood veneers[J]. Acs Appl Mater Inter, 2012, 4(3): 1760-1769.

[18]

Shariki S, Liew S Y, Thielemans W, et al. Tuning percolation speed in layer-by-layer assembled polyanilinenanocellulose composite films[J]. Solid State Electr, 2010, 15(11/12): 2675-2681.

[19]

Shi Z J, Zang S S, Jiang F, et al. In situ nano-assembly of bacterial cellulose-polyaniline composites[J]. Rsc Advances, 2012, 2(3): 1040-1046.

[20]

Wang H H, Zhu E W, Yang J Z, et al. Bacterial cellulose nanofiber-supported polyaniline nanocomposites with flake-shaped morphology as supercapacitor electrodes[J]. J Phys Chem C, 2012, 116(24): 13013-13019.

[21]

Barik A, Solanki P R, Kaushik A, et al. Polyanilinecarboxymethyl cellulose nanocomposite for cholesterol detection[J]. J Nanosci Nanotechno, 2010, 10(10): 6479-6488.

[22]

Cerqueira D A, Valente A J M, Filho G R, et al. Synthesis and properties of polyaniline-cellulose acetate blends: The use of sugarcane bagasse waste and the effect of the substitution degree[J]. Carbohydr Polym, 2009, 78(3): 402-408.

[23]

Takano T, Tagaya M, Kobayashi T. Dual-layer hollow fiber of polyaniline-cellulose acetate prepared with simple wet technique of chemical polymerization of aniline[J]. Polym Bull, 2013, 70(11): 3019-3030.

[24]

Zhang L, Ma H Y, Cao F, et al. Nonaqueous synthesis of uniform polyaniline nanospheres via cellulose acetate template[J]. J Polym Sci Pol Chem, 2012, 50(5): 912-917.

[25]

Shi X W, Zhang L N, Cai J, et al. A facile construction of supramolecular complex from polyaniline and cellulose in aqueous system[J]. Macromolecules, 2011, 44(12): 4565-4568.

[26]

Shi X W, Hu Y L, Fu F Y, et al. Construction of PANIcellulose composite fibers with good antistatic properties[J]. J Mater Chem, 2014, 2(21): 7669-7673.

[27]

Shi X W, Hu Y L, Tu K, et al. Electromechanical polyaniline-cellulose hydrogels with high compressive strength[J]. Soft Matter, 2013, 9(42): 10129-10134.

[28]

Zhou Z H, Zhang X X, Lu C H, et al. Polyanilinedecorated cellulose aerogel nanocomposite with strong interfacial adhesion and enhanced photocatalytic activity[J]. Rsc Advances, 2014, 4(18): 8966-8972.

[29]

Bhaumik M, Mc Crindle R, Maity A. Efficient removal of Congo red from aqueous solutions by adsorption onto interconnected polypyrrole-polyaniline nanofibres[J]. Chem Eng J, 2013, 228(28): 506-515.

[30]

Yu P P, Li Y Z, Zhao X, et al. Graphene-wrapped polyaniline nanowire arrays on nitrogen-doped carbon fabric as novel flexible hybrid electrode materials for high-performance supercapacitor[J]. Langmuir, 2014, 30(18): 5306-5313.

[31]

Zhong M, Song Y, Li Y F, et al. Effect of reduced graphene oxide on the properties of an activated carbon cloth/polyaniline flexible electrode for supercapacitor application[J]. J Power Sources, 2012, 217(11): 6-12.

[32]

Yin Y L, Liu C H, Fan S S. Hybrid energy storage devices combining carbon-nanotube/polyaniline supercapacitor with leadacid battery assembled through a"directlyinserted"method[J]. Rsc Advances, 2014, 4(50): 26378-26382.

[33]

Li L, Li W P, Yang H M, et al. Sensitive origami duala nalyteelectrochemical immunodevice based on polyaniline/Au-paper electrode and multi-labeled 3D graphene sheets[J]. Electrochim Acta, 2014, 120(7): 102-109.

[34]

Li X Q, Yang L, Lei Y, et al. Microwave-assisted chemical-vapor-induced in situ polymerization of polyaniline nanofibers on graphite electrode for highperformance supercapacitor[J]. Acs Appl Mater Inter, 2014, 6(22): 19978-19989.

[35]

Beneventi D, Chaussy D, Curtil D, et al. Pilot-scale elaboration of graphite/microfibrillated cellulose anodes for Li-ion batteries by spray deposition on a forming paper sheet[J]. Chem Eng J, 2014, 243(4): 372-379.

[36]

Sun Z D, Ma Y H, Xu Y, et al. Effect of the particle size of expandable graphite on the thermal stability, flammability, and mechanical properties of high-density polyethylene/ethylene vinyl-acetate/expandable graphite composites[J]. Polym Eng Sci, 2014, 54(5): 1162-1169.

[37]

Chen J H, Xu J K, Wang K, et al. Highly Thermostable, Flexible, and Conductive Films Prepared from Cellulose, Graphite, and Polypyrrole Nanoparticles[J]. Acs Appl Mater Inter, 2015, 7(28): 15641-15648.

[38]

Fink H P, Weigel P, Purz H, et al. Structure formation of regenerated cellulose materials from NMMO-solutions[J]. Prog Polym Sci, 2001, 26(9): 1473-1524.

[39]

Cuculo S M H, John A. The solubility of unmodified cellulose: A critique of the literature[J]. J Macromol Sci C Polym Rev, 1980, 18(1): 1-82.

[40]

French A D. Idealized powder diffraction patterns for cellulose polymorphs[J]. Cellulose, 2013, 21(2): 885-896.

[41]

Wu X M, Qi S, He J, et al. Synthesis of high conductivity polyaniline/Ag/graphite nanosheet composites via ultrasonic technique[J]. J Polym Res, 2010, 17(5): 751-757.

[42]

Du Y C, Wu T F, Yan N, et al. Pulp fiber-reinforced thermoset polymer composites: Effects of the pulp fibers and polymer[J]. Compos Part B-Eng, 2013, 48(5): 10-17.

[43]

Liu R G, Yu H, Huang Y. Structure and morphology of cellulose in wheat straw[J]. Cellulose, 2005, 12(1), 25-34.

[44]

Zhao D S, Liu M S, Ren H W, et al. Dissolution of cellulose in Na OH based solvents at low temperature[J]. Fiber Polym, 2013, 14(8): 1261-1265.

[45]

Mo Z L, Zhao Z L, Chen H, et al. Heterogeneous preparation of cellulose-polyaniline conductive composites with cellulose activated by acids and its electrical properties[J]. Carbohydr Polym, 2009, 75(4): 660-664.

[46]

Luo Y S, Kong D Z, Jia Y L, et al. Self-assembled graphene@PANI nanoworm composites with enhanced supercapacitor performance[J]. Rsc Advances, 2013, 3(17): 5851-5859.

[47]

Mavundla S E, Malgas G F, Motaung D E, et al. Synthesis of flower-like zinc oxide and polyaniline with worm-like morphology and their applications in hybrid solar cells[J]. Cryst Res Technol. 2012, 47(5): 553-560.

[48]

Bohli N, Gmati F, Mohamed A B, et al. Conductivity mechanism of polyaniline organic films: the effects of solvent type and casting temperature[J]. J Phys D: Appl Phys, 2009, 42(20): 205404-205410.

[49]

Zhou Y, Ding C Y, Qian X R. Further improvement of flame retardancy of polyaniline-deposited paper composite through using phytic acid as dopant or co-dopant[J]. Carbohydr Polym, 2015, 115: 670-676.

[50]

Shi N L, Guo X M, Jing H M, et al. Antibacterial effect of the conducting polyaniline[J]. J Mater Sci Technol, 2006, 22(3): 289-290.

[51]

Liu S B, Zeng T H, Hofmann M, et al. Antibacterial activity of graphite, graphite oxide, graphene oxide, and reduced graphene oxide: membrane and oxidative stress[J]. Acs Nano, 2011, 5(9): 6971-6980.

Paper and Biomaterials
Pages 40-51
Cite this article:
Chen J, Liu J, Zhang W, et al. Conductive Polyaniline/Cellulose/Graphite Composite Films with High Thermal Stability and Antibacterial Activity. Paper and Biomaterials, 2017, 2(1): 40-51. https://doi.org/10.26599/PBM.2017.9260006

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Received: 20 September 2016
Accepted: 11 November 2016
Published: 25 January 2017
© 2017 Paper and Biomaterials Editorial Board

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)

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