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Articles

Development of an antimicrobial material based on a nanocomposite cellulose acetate film for active food packaging

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Pages 342-353 | Received 15 Nov 2013, Accepted 10 Dec 2013, Published online: 24 Feb 2014

References

  • Almenar E, Catala R, Hernandez-Muñoz P, Gavara R. 2009. Optimization of an active package for wild strawberries based on the release of 2-nonanone. LWT – Food Sci Technol. 42:587–593.
  • ASTM Standard E2149. 2010. E2149-10. Standard test method for determining the antimicrobial activity of inmobilized antimicrobial agents under dynamic contact conditions. West Conshohocken (PA): ASTM International.
  • Ayala-Zavala JF, González-Aguilar GA, Toro-Sánchez LD. 2009. Enhancing safety and aroma appealing of fresh-cut fruits and vegetables using the antimicrobial and aromatic power of essential oils. J Food Sci. 74:R84–R91.
  • Balaguer MP, Lopez-Carballo G, Catala R, Gavara R, Hernandez-Munoz P. 2013. Antifungal properties of gliadin films incorporating cinnamaldehyde and application in active food packaging of bread and cheese spread foodstuffs. Int J Food Microbiol. 166:369–377.
  • Baldassari S, Komarneni S, Mariani E, Villa C. 2006. Microwave versus conventional preparation of organoclays from natural and synthetic clays. Appl Clay Sci. 31:134–141.
  • Barud HS, Júnior AMdA, Santos DB, Assuncao RMNd, Meireles CS, Cerqueira DA, Filho GR, Ribeiro CA, Messaddeq Y, Ribeiro SJL. 2008. Thermal behavior of cellulose acetate produced from homogeneous acetylation of bacterial cellulose. Thermochim Acta. 471:61–69.
  • Bruna JE, Peñaloza A, Guarda A, Rodríguez F, Galotto MJ. 2012. Development of MtCu2+/LDPE nanocomposites with antimicrobial activity for potential use in food packaging. Appl Clay Sci. 58:79–87.
  • CEN. 2005. EN 13130–1. Materials and articles in contact with foodstuffs–plastics substances subject to limitation. Part 1: guide to test methods for the specific migration of substances from plastics to foods and food simulants and the determination of substances in plastics and the selection of conditions of exposure to food simulants.
  • Choudalakis G, Gotsis AD. 2009. Permeability of polymer/clay nanocomposites: a review. Eur Polym J. 45:967–984.
  • Crank J. 1975. The mathematical of diffusion. 2nd ed. New York (NY): Oxford University Press.
  • EU 2004. Regulation (EC) 1935/2004 of the European Parliament and of the Council of 27 October 2004 on materials and articles intended to come into contact with food and repealing Directives 80/590/EEC and 89/109/EEC. Off J Eur Union. L338:4–17.
  • EU 2009. Regulation (EC) 450/2009 of 29 May 2009 on active and intelligent materials and articles intended to come into contact with food. Off J Eur Union. L135:3–11.
  • Frost RL, Vassallo AM. 1996. The dehydroxylation of the kaolinite clay minerals using infrared emission spectroscopy. Clays Clay Miner. 44:635–651.
  • Galotto MJ, Torres A, Guarda A, Moraga N, Romero J. 2011a. Experimental and theoretical study of LDPE versus different concentrations of Irganox 1076 and different thickness. Food Res Int. 44:566–574.
  • Galotto MJ, Torres A, Guarda A, Moraga N, Romero J. 2011b. Experimental and theoretical study of LDPE: evaluation of different food simulants and temperatures. Food Res Int. 44:3072–3078.
  • Gandek TP. 1986. Migration of phenolic antioxidants from polyolefins to aqueous media with application to indirect food additive migration [PhD thesis]. Cambridge (MA): Massachusetts Institute of Technology.
  • Giménez B, Gómez-Guillén MC, López-Caballero ME, Gómez-Estaca J, Montero P. 2012. Role of sepiolite in the release of active compounds from gelatineegg white films. Food Hydrocoll. 27:475–486.
  • Gómez-Estaca J, Montero P, Fernández-Martín F, Alemán A, Gómez-Guillén MC. 2009. Physical and chemical properties of tuna-skin and bovine-hide gelatin films with added aqueous oregano and rosemary extracts. Food Hydrocoll. 23:1334–1341.
  • Goñi P, López P, Sánchez C, Gómez-Lus R, Becerril R, Nerín C. 2009. Antimicrobial activity in the vapour phase of a combination of cinnamon and clove essential oils. Food Chem. 116:982–989.
  • Guarda A, Rubilar JF, Miltz J, Galotto MJ. 2011. The antimicrobial activity of microencapsulated thymol and carvacrol. Int J Food Microbiol. 146:144–150.
  • Gutiérrez L, Escudero A, Batlle R, Nerín C. 2009. Effect of mixed antimicrobial agents and flavors in active packaging films. J Agr Food Chem. 57:8564–8571.
  • Han JK, Selke SE, Downes TW, Harte BR. 2003. Application of a computer model to evaluate the ability of plastics to act as functional barriers. Packag Techol Sci. 16:107–118.
  • Hassan-Nejad M, Ganster J, Bohn A, Pinnow M, Volkert B. 2009. Bio-based nanocomposites of cellulose acetate and nano-clay with superior mechanical properties. Macromol Symp. 280:123–129.
  • Helmroth IE, Dekker M, Hankemeier T. 2002. Influence of solvent absorption on the migration of Irganox 1076 from LDPE. Food Addit Contam. 19:176–183.
  • Ilharco LM, Barros RBd. 2000. Aggregation of pseudoisocyanine iodide in cellulose acetate films: structural characterization by FTIR. Langmuir. 16:9331–9337.
  • Johansson C. 2011. Bio-nanocomposites for food packaging applications. In: Mittal V, editor. Nanocomposites with biodegradable polymers. New York (NY): Oxford University Press.
  • Ke YC, Stroeve O. 2005. Polymer-layered silicate and silica nanocomposites. Amsterdam: Elsevier B. V.
  • Kuorwel KK, Cran MJ, Sonneveld K, Miltz J, Bigger SW. 2011. Antimicrobial activity of natural agents coated on starch-based films against staphylococcus aureus. J Food Sci. 76:M531–M537.
  • Lagarón JM, López-Rubio A. 2011. Nanotechnology for bioplastics: opportunities, challenges and strategies. Trends Food Sci Technol. 22:611–617.
  • Lima JAd, Pinotti CA, Felisberti MI, Goncalves MC. 2012. Morphology and mechanical porperties of nanocomposites of cellulose acetate and organic montmorillonite prepared with different plasticizers. J Appl Polym Sci. 124:4628–4635.
  • Malachová K, Praus P, Pavlíčková Z, Turicová M. 2009. Activity of antibacterial compounds immobilised on montmorillonite. Appl Clay Sci. 43:364–368.
  • Manso S, Cacho-Nerin F, Becerrila R, Nerín C. 2013. Combined analytical and microbiological tools to study the effect on Aspergillus flavus of cinnamon essential oil contained in food packaging. Food Contr. 30:370–378.
  • Marsh K, Bugusu B. 2007. Food packaging–roles, materials, and environmental issues. J Food Sci. 72:R39–R55.
  • Mascheroni E, Guillard V, Gastaldi E, Gontard N, Chalier P. 2011. Anti-microbial effectiveness of relative humidity-controlled carvacrol release from wheat gluten/montmorillonite coated papers. Food Contr. 22:1582–1591.
  • Meera AP, Selvin TP, Sabu T. 2012. Effect of organoclay on the gas barrier properties of natural rubber nanocomposites. Polym Comp. 33:524–531.
  • Miltz J, Rosen-Doody V. 1984. Migration of styrene monomer from polystyrene packaging materials into food simulants. J Food Process Pres. 8:151–161.
  • Mohanty AK, Wibowo A, Misra M, Drzal LT. 2003. Development of renewable resource–based cellulose acetate bioplastic: effect of process engineering on the performance of cellulosic plastics. Polym Eng Sci. 43:1151–1161.
  • Muriel-Galet V, Cerisuelo JP, López-Carballo G, Aucejo S, Gavara R, Hernández-Muñoz P. 2013. Evaluation of EVOH-coated PP films with oregano essential oil and citral to improve the shelf-life of packaged salad. Food Contr. 30:137–143.
  • Nigmatulli R, Gao F, Konovalova V. 2008. Polymer-layered silicate nanocomposites in the design of antimicrobial materials. J Mater Sci. 43:5728–5733.
  • Paiva LBd, Morales AR, Díaz FRV. 2008. Organoclays: properties, preparation and applications. Appl Clay Sci. 42:8–24.
  • Park H-M, Liang X, Mohanty AK, Misra M, Drzal LT. 2004. Effect of compatibilizer on nanostructure of the biodegradable cellulose acetate/organoclay nanocomposites. Macromolecules. 37:9076–9082.
  • Park H-M, Misra M, Drzal LT, Mohanty AK. 2004. “Green” nanocomposites from cellulose acetate bioplastic and clay: effect of eco-friendly triethyl citrate plasticizer. Biomacromolecules. 5:2281–2288.
  • Paul DR, Robeson LM. 2008. Polymer nanotechnology: nanocomposites. Polymer. 49:3187–3204.
  • Paul DR, Zeng QH, Yu AB, Lu GQ. 2005a. The interlayer swelling and molecular packing in organoclays. J Colloid Interf Sci. 292:462–468.
  • Paul DR, Zeng QH, Yu AB, Lu GQ. 2005b. Poly(caprolactone triol) as plasticizer agent for cellulose acetate films: influence of the preparation procedure and plasticizer content on the physico-chemical properties. Polym Adv Technol. 15:593–600.
  • Pei R-S, Zhou F, Ji B-P XuJ. 2009. Evaluation of combined antibacterial effects of eugenol, cinnamaldehyde, thymol, and carvacrol against E. coli with an improved method. J Food Sci. 74:M379–M383.
  • Pelissari FM, Grossmann MVE, Yamashita F, Pineda EAG. 2009. Antimicrobial, mechanical, and barrier properties of cassava starch-chitosan films incorporated with oregano essential oil. J Agr Food Chem. 57:7499–7504.
  • Peltzer M, Wagner J, Jiménez A. 2009. Migration study of carvacrol as a natural antioxidant in high-density polyethylene for active packaging. Food Addit Contam. 26:938–946.
  • Picard E, Espuche E, Fulchiron R. 2011. Effect of an organo-modified montmorillonite on PLA crystallization and gas barrier properties. Appl Clay Sci. 53:58–65.
  • Piringer OG. 1994. Evaluation of plastics for food packaging. Food Addit Contam. 11:221–230.
  • Quintero RI, Rodriguez F, Bruna J, Guarda A, Galotto MJ. 2012. Cellulose acetate butyrate nanocomposites with antimicrobial properties for food packaging. Packag Technol Sci. 26:249–265.
  • Ramos M, Jiménez A, Peltzer M, Garrigós MC. 2012. Characterization and antimicrobial activity studies of polypropylene films with carvacrol and thymol for active packaging. J Food Eng. 109:513–519.
  • Ray SS, Okamoto M. 2003. Polymer/layered silicate nanocomposites: a review from preparation to processing. Prog Polym Sci. 28:1539–1641.
  • Restuccia D, Spizzirri UG, Parisi OI, Cirillo G, Curcio M, Iemma F, Puoci F, Vinci G, Picci N. 2010. New EU regulation aspects and global market of active and intelligent packaging for food industry applications. Food Contr. 21:1425–1435.
  • Rodríguez F, Sepulveda HM, Bruna J, Guarda A, Galotto MJ. 2012. Development of cellulose eco-nanocomposites with antimicrobial properties oriented for food packaging. Packag Technol Sci. 26:149–160.
  • Rodríguez FJ, Coloma A, Galotto MJ, Guarda A, Bruna JE. 2012. Effect of organoclay content and molecular weight on cellulose acetate nanocomposites properties. Polym Degrad Stab. 97:1996–2001.
  • Rodríguez FJ, Galotto MJ, Guarda A, Bruna JE. 2012. Modification of cellulose acetate films using nanofillers based on organoclays. J Food Eng. 110:262–268.
  • Romero RB, Leite CAP, Gonçalves MdC. 2009. The effect of the solvent on the morphology of cellulose acetate/montmorillonite nanocomposites. Polymer. 50:161–170.
  • Rupika LAS, Sonneveld K, Miltz J, Bigger SW. 2005. Development and evaluation of low-density polyethylene-based antimicrobial food packaging polymers containing thymol and carvacrol. Presented at 22nd IAPRI Symposium; May 22–24; Campinas.
  • Sáez J. 2012. Desarrollo de eco-nanocomposites activos de acetato de celulosa mediante proceso de extrusión. Santiago: University of Santiago de Chile.
  • Sanches-Silva A, Cruz Freire JM, Sendón R, Franz R, Paseiro-Losada P. 2009Migration and diffusion of diphenylbutadiene from packages into foods. J Agr Food Chem. 57:10225–10230.
  • Sanchez-Garcia MD, Ocio MJ, Gimenez E, Lagaron JM. 2008a. Novel polycaprolactone nanocomposites containing thymol of interest in antimicrobial film and coating applications. J Plast Film Sheet. 24:239–251.
  • Sanchez-Garcia MD, Ocio MJ, Gimenez E, Lagaron JM. 2008b. Novel polycaprolactone nanocomposites cotaining thymol of interest in antimicrobial film and coating applications. J Plast Film Sheet. 24:239–251.
  • Sheng D, Tan J, Liu X, Wang P, Yang Y. 2011. Effect of organoclay with various organic modifiers on the morphological, mechanical, and gas barrier properties of thermoplastic polyurethane/organoclay nanocomposites. J Mater Sci. 46:6508–6517.
  • Solovyov S, Goldman A. 2008. Mass transport & reactive barriers in packaging. Lancaster (PA): DEStech Publications, Inc.
  • Torres A, Guarda A, Moraga N, Romero J, Galotto MJ. 2012. Experimental and theoretical study of thermodynamics and transport properties of multilayer polymeric food packaging. Eur Food Res Technol. 234:713–722.
  • Tunç S, Duman O. 2011. Preparation of active antimicrobial methyl cellulose/carvacrol/montmorillonite nanocomposite films and investigation of carvacrol release. LWT – Food Sci Technol. 44:465–472.
  • Uddin F. 2008. Clays, nanoclays, and montmorillonite minerals. Metall Mater Trans A. 39A:2804–2814.
  • Vazquez A, López M, Kortaberria G, Martín L, Mondragon I. 2008. Modification of montmorillonite with cationic surfactants. Thermal and chemical analysis including CEC determination. Appl Clay Sci. 41:24–36.
  • Wibowo AC, Misra M, Park H-M, Drzal LT, Schalek R, Mohanty AK. 2006. Biodegradable nanocomposites from cellulose acetate: mechanical, morphological, and thermal properties. Compos Part A. 37:1428–1433.
  • Xi Y, Zhou Q, Frost RL, He H. 2007. Thermal stability of octadecyltrimethylammonium bromide modified montmorillonite organoclay. J Colloid Interf Sci. 311:347–353.
  • Yang D, Yuan P, Zhu JX, He H-P. 2007. Synthesis and characterization of antibacterial compounds using montmorillonite and chlorhexidine acetate. J Therm Anal Calorim. 89:847–852.
  • Zidelkheir B, Abdelgoad M. 2008. Effect of surfactant agent upon the structure of montmorillonite. X-ray diffraction and thermal analysis. J Therm Anal Calorim. 94:181–187.

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