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Original Articles

Effect of the storage conditions on mechanical properties and microstructure of biodegradable baked starch foams

Efecto de las condiciones de almacenamiento en las propiedades mecánicas y microestructura en espumas biodegradables de almidón cocido

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Pages 415-422 | Received 18 Jun 2015, Accepted 03 Nov 2015, Published online: 27 Nov 2015

References

  • Aila-Suárez, S., Palma-Rodríguez, H. M., Rodríguez-Hernández, A. I., Hernández-Uribe, J. P., Bello-Pérez, L. A., & Vargas-Torres, A. (2013). Characterization of films made with chayote tuber and potato starches blending with cellulose nanoparticles. Carbohydrate Polymers, 98, 102–107. doi:10.1016/j.carbpol.2013.05.022
  • Amano, Y., Nozaki, K., Araki, T., Shibasaki, H., Kuga, S., & Kanda, T. (2001). Reactivities of cellulases from fungi towards ribbon-type bacterial cellulose and band-shaped bacterial cellulose. Cellulose, 8, 267–274. doi:10.1023/A:1015167304364
  • American Society for Testing Materials. (1993a). ASTM D 638 M–93. Standard test method for tensile properties of plastic (Metric). In Annual book of ASTM standards. Philadelphia, PA: Author.
  • American Society for Testing Materials. (1993b). ASTM D638M-91a. Standard test method for tensile properties of plastics. In Annual book of ASTM standards. Philadelphia, PA: Author.
  • Beltrame, P. L., Carnitti, P., & Focher, B. (1984). Enzymatic hydrolysis of cellulosic materials: A kinetic study. Biotechnology and Bioengineering, 31, 160–167.
  • Chang, Y. P., Cheah, P. B., & Seow, C. C. (2000). Plasticizing—antiplasticizing effects of water on physical properties of tapioca starch films in the glassy state. Journal of Food Science, 65, 445–451. doi:10.1111/jfds.2000.65.issue-3
  • Cinelli, P., Chiellini, E., Lawton, J. W., & Imam, S. H. (2006). Foamed articles based on potato starch, corn fibers and poly(vinyl alcohol). Polymer Degradation and Stability, 91, 1147–1155. doi:10.1016/j.polymdegradstab.2005.07.001
  • Cotonieto-Morales, M. B., Palma-Rodríguez, H. M., Chavarría-Hernández, N., Hernández- Uribe, J. P., Zamudio-Flores, P. B., Bello-Pérez, L. A., & Vargas-Torres, A. (2015). Partial characterization of chayotextle starch composites with added polyvinyl alcohol. Starch/Stärke, 66, 1–10.
  • Cova, A., Sandoval, J., Laredo, E., & Muller, A. J. (2009). Efecto plastificante y antiplastificante del agua en sistemas a base de almidón. Suplemento de la revista Latinoamericana de Metalurgia y Materiales, S2(1), 45–46.
  • Doane, W. M. (1992). USDA research on starch-based biodegradable plastics. Starch – Stärke, 44, 293–295. doi:10.1002/star.19920440805
  • Fan, L. T., Lee, Y.-H., & Beardmore, D. H. (1980). Mechanism of the enzymatic hydrolysis of cellulose: Effects of major structural features of cellulose on enzymatic hydrolysis. Biotechnology and Bioengineering, 22, 177–199. doi:10.1002/(ISSN)1097-0290
  • Fiedorowicz, M., & Para, A. (2006). Structural and molecular properties of dialdehyde starch. Carbohydrate Polymers, 63, 360–366. doi:10.1016/j.carbpol.2005.08.054
  • Flores, E. (1989). El chayote, Sechium edule swartz (Cucurbitaceae). Revista de Biología Tropical, 37, 1–54.
  • Flores-Gorosquera, E., García-Suárez, F. J., Flores-Huicochea, E., Nuñez-Santiago, M. C., González-Soto, R. A., & Bello-Pérez, L. A. (2004). Rendimiento del proceso de extracción de almidón de frutos de plátano (Musa paradisiaca). Estudio en Plantapiloto. Acta Científica Venezolana, 55, 86–90.
  • Fox, E., Shotton, K., & Ulrich, C. (1995). Sigma-stat user manual. San Rafael, CA: Jandel Scientific.
  • Glenn, G., & Orts, W. (2001). Properties of starch- based foam formed by compression/explosion processing. Industrial Crops and Products, 13, 135–143. doi:10.1016/S0926-6690(00)00060-1
  • Glenn, G., Orts, W. J., & Nobes, G. A. R. (2001). Starch, fiber and CaCO3 effects on the physical properties of foams made by a baking process. Industrial Crops and Products, 14, 201–212. doi:10.1016/S0926-6690(01)00085-1
  • Glenn, G. M., & Irving, D. W. (1995). Starch-based microcellular foams. Cereal Chemistry, 72, 155–161.
  • Hanna, M. A., & Xu, Y. (2009). Starch–Fiber Composites. In L. Yu (Ed.), Biodegradable Polymer Blends and Composites from Renewable Resources (pp. 340–363). Lincoln, USA: John Wiley & Sons, University of Nebraska.
  • Harper, J. M., & Tribelhorn, R. E. (1992). Expansion of native cereal starch extrudates. In J. L. Kokini, C. Ho, & M. V. Karwe (Eds.), Food extrusion science and technology (pp. 653–667). New York, NY: Marcel Dekker.
  • Hernandez-Uribe, J. P., Agama-Acevedo, E., Gonzalez-Soto, R. A., Bello-Pérez, L. A., & Vargas-Torres, A. (2011). Isolation and characterization of Mexican chayote tuber (Sechiumedule Sw.) starch. Starch/Stärke, 63, 32–41. doi:10.1002/star.v63.1
  • Hoseney, R. C., Zeleznak, K. J., & Yost, D. A. (1986). A note on the gelatinization of starch. Starch/Stärke, 38, 407–409. doi:10.1002/(ISSN)1521-379X
  • Imam, H., & Gordon, S. H. G. (2002). Biodegradation of coproducts from industrially processed corn in a compost environment. Journal of Polymers and the Environment, 10, 147–154. doi:10.1023/A:1021144104458
  • Jiménez-Hernández, J., Salazar-Montoya, J. A., & Ramos-Ramírez, E. G. (2007). Physical, chemical and microscopic characterization of a new starch from chayote (Sechium edule) tuber and its comparison with potato and maize starches. Carbohydrate Polymers, 68, 679–686. doi:10.1016/j.carbpol.2006.07.035
  • Kaisangsri, N., Kerdchoechuen, O., & Laohakunjit, N. (2012). Biodegradable foam tray from cassava starch blended with natural fiber and chitosan. Industrial Crops and Products, 37, 542–546. doi:10.1016/j.indcrop.2011.07.034
  • Lawton, J. W., Shogren, R. L., & Tiefenbacher, K. F. (1999). Effect of batter solids and starch type on the structure of baked starch foams. Cereal Chemistry, 76, 682–687. doi:10.1094/CCHEM.1999.76.5.682
  • Lawton, J. W., Shogren, R. L., & Tiefenbacher, K. F. (2004). Aspen fiber addition improves the mechanical properties of baked cornstarch foams. Industrial Crops and Products, 19, 41–48. doi:10.1016/S0926-6690(03)00079-7
  • Lee, S.-Y., & Hanna, M. A. (2008). Preparation and characterization of tapioca starch-poly(lactic acid)-Cloisite NA+ nanocomposite foams. Journal of Applied Polymer Science, 110, 2337–2344. doi:10.1002/app.v110:4
  • Myllärinen, P., Partanen, R., Seppälä, J., & Forssell, P. (2002). Effect of glycerol on behaviour of amylose and amylopectin films. Carbohydrate Polymers, 50, 355–361. doi:10.1016/S0144-8617(02)00042-5
  • Ramkumar, D. H. S., Bhattacharya, M., & Vaidya, U. R. (1997). Properties of injection moulded starch/synthetic polymer blends-II. Evaluation of Mechanical Properties. European Polymer, 33, 729–742.
  • Rao, M. A., & Tattiyakul, J. (1999). Granule size and rheological behavior of heated tapioca starch dispersions. Carbohydrate Polymers, 38, 123–132. doi:10.1016/S0144-8617(98)00112-X
  • Rodríguez-Hernández, A. I., Tecante, A., & Doublier, J. L. (2001). Viscoelastic behavior of waxy maize starch-gellan mixtures under small amplitude oscillatory shear. In J. Welty-Chanes, G. V. Barbosa-Cánovas, & J. M. Aguilera (Eds.), Proceedings of the eighth international congress on engineering and food (Vol. 1, pp. pp. 509–513). Lancaster: Technomic Publishing.
  • Salgado, P. R., Schmidt, V. C., Molina Ortiz, S. E., Mauri, A. N., & Laurindo, J. B. (2008). Biodegradable foams based on cassava starch, sunflower proteins and cellulose fibers obtained by a baking process. Journal of Food Engineering, 85, 435–443. doi:10.1016/j.jfoodeng.2007.08.005
  • Shey, J., Imam, H., Glenn, G., & Orts, W. J. (2006). Properties of baked starch foam with natural rubber latex. Industrial Crops and Products, 24, 34–40. doi:10.1016/j.indcrop.2005.12.001
  • Shogren, R. L., Lawton, J. W., Doane, W. M., & Tiefenbacher, K. F. (1998). Structure and morphology of baked starch foams. Polymer, 39, 6649–6655. doi:10.1016/S0032-3861(97)10303-2
  • Shogren, R. L., Lawton, J. W., & Tiefenbacher, K. F. (2002). Baked starch foams: Starch modifications and additives improve process parameters, structure and properties. Industrial Crops and Products, 16, 69–79. doi:10.1016/S0926-6690(02)00010-9
  • Šimkovic, I. (2013). Unexplored possibilities of all-polysaccharide composites. Carbohydrate Polymers, 95, 697–715. doi:10.1016/j.carbpol.2013.03.040
  • Stevens, E. S., Klamcznski, A., & Glenn, G. (2010). Starch-lignin foams. Express Polymer Letters, 4, 311–320. doi:10.3144/expresspolymlett.2010.39
  • Tang, H., Watanabe, K., & Mitsunaga, T. (2002). Characterization of storage starches from quinoa, barley and adzuki seeds. Carbohydrate Polymers, 49, 13–22. doi:10.1016/S0144-8617(01)00292-2
  • Terrazas-Hernández, A. J., Berrios, J. De J., Glenn, G., Syed, H. I., Delilah, W., Bello-Pérez, L. A., & Vargas-Torres, A. (2015). Properties of cast made of chayote (Sechiumedule Sw.) tuber starch reinforced with cellulose nanocrystals. Journal of Polymer Environment, 23, 30–37. doi:10.1007/s10924-014-0652-0
  • Tester, R. F., & Karkalas, J. (2002). Starch. In A. Steinbüchel, (Series Ed.) E. J. Vandamme, S. De Baets, & A. Steinbüchel (vol. Eds), Biopolymers, vol. 6. Polysaccharides.ll. Polysaccharides from eukaryotes (381–438). Weinheim: Wiley-VCH.
  • Tsoumis, G. (1991). Science and technology of wood structure, properties, utilization (pp. 340–380). New York, NY: Van Nostrand Reinhold.
  • US Congress, Office of Technology Assessment. (1993). Biopolymers (pp. 19–50). Washington, DC: OTA-BP-E-102, US Government Printing Office.
  • Van Soest, J. J., & Vliegenthart, J. F. (1997). Crystallinity in starch plastics: Consequences for material properties. Trends in Biotechnology, 15, 208–213. doi:10.1016/S0167-7799(97)01021-4
  • Vargas-Torres, A., Berrios, J. De J., Chiou, B., Wood, D., Bello-Pérez, L. A., Glenn, G., & Imam, H. (2012). Extruded/ injection-molded composites containing unripe plantain flour, ethylene-vinyl alcohol, and glycerol: Evaluation of mechanical property, storage conditions, biodegradability, and color. Journal of Applied Polymer Science, 124, 2632–2639. doi:10.1002/app.35271
  • Vargas-Torres, A., Zamudio‐Flores, P. B., Salgado‐Delgado, R., & Bello‐Pérez, L. A. (2007). Morphological, thermal, and mechanical studies of film elaborated with the blend low‐density polyethylene and chemical‐modified banana starch. Journal of Applied Polymer Science, 106, 3994–3999. doi:10.1002/app.v106:6
  • Wang, Y. J., & Wang, L. (2003). Physicochemical properties of common and waxy corn starches oxidized by different levels of sodium hypochlorite. Carbohydrate Polymers, 52, 207–217. doi:10.1016/S0144-8617(02)00304-1
  • Xu, Y. X., Hanna, K. M., & Nag, D. (2005). Chitosan-starch composites film: Preparation and characterization. Industrial Crops and Products, 21, 185–192. doi:10.1016/j.indcrop.2004.03.002
  • Yang, S.-L., & Walters, T. (1992). Ethnobotany and the economic role of the Cucurbitaceae of China. Economic Botany, 46, 349–367. doi:10.1007/BF02866506