Influence of LLDPE-g-MA on Mechanical Properties, Degradation Performance and Water Absorption of Thermoplastic Sago Starch Blends

https://doi.org/10.22146/ijc.68558

Denny Akbar Tanjung(1), Novesar Jamarun(2*), Syukri Arief(3), Hermansyah Aziz(4), Ahmad Hafizullah Ritonga(5), Boy Isfa(6)

(1) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Andalas, Padang-25163, Indonesia, Department of Agrotechnology, Faculty of Agriculture, Universitas Medan Area, Medan-20223, Indonesia
(2) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Andalas, Padang-25163, Indonesia
(3) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Andalas, Padang-25163, Indonesia
(4) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Andalas, Padang-25163, Indonesia
(5) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Andalas, Padang-25163, Indonesia, Department of Chemistry, Faculty of Science, Technology, and Information, University of Sari Mutiara Indonesia, Medan-20123, Indonesia
(6) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Andalas, Padang-25163, Indonesia
(*) Corresponding Author

Abstract


The addition of LLDPE-g-MA into the compound of sago starch/LLDPE was studied to improve its mechanical, morphology, degradation performance, and water absorption properties. Thermoplastic Sago Starch was composed of a mixture of sago starch and glycerol. LLDPE-g-MA was prepared in varied concentrations based on the weight of TPSS (0, 6, 8, 10, and 14 wt.%) by reacting LLDPE, maleic anhydride, and benzoyl peroxide using an internal mixer. The results showed an increase in values obtained from mechanical tests, i.e., tensile strength was improved from 0.6902 to 3.6187 N/mm2 with the addition of LLDPE-g-MA at 10 wt.%. The addition also resulted in a 1.44% increment in elongation at break and 251 N/mm2 for Young's Modulus. The surface morphology of the sample demonstrated an excellent interfacial adhesion reaction or LLDPE dispersion over the entire surface of the matrix (starch). The water absorption test continued to decrease with the increase in the LLDPE-g-MA concentration from 53 wt.% (without LLDPE-g-MA) to 14 wt.% at 10 wt.% LLDPE-g-MA concentration. The degradation performance showed that the sample could be degraded under all three conditions for up to 30 days.

 


Keywords


bioplastic; compatibilizer; coupling agent; LLDPE-g-MA; thermoplastic

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References

[1] Kumar, M., Mohanty, S., Nayak, S.K., and Parvaiz, M.R., 2010, Effect of glycidyl methacrylate (GMA) on the thermal, mechanical and morphological property of biodegradable PLA/PBAT blend and its nanocomposites, Bioresour. Technol., 101 (21), 8406–8415.

[2] Zoungranan, Y., Lynda, E., Dobi-Brice, K.K., Tchirioua, E., Bakary, C., and Yannick, D.D., 2020, Influence of natural factors on the biodegradation of simple and composite bioplastics based on cassava starch and corn starch, J. Environ. Chem. Eng., 8 (5), 104396.

[3] Amin, M.R., Chowdhury, M.A., and Kowser, M.A., 2019, Characterization and performance analysis of composite bioplastics synthesized using titanium dioxide nanoparticles with corn starch, Heliyon, 5 (8), e02009.

[4] Thiruchelvi, R., Das, A., and Sikdar, E., 2020, Bioplastics as better alternative to petro plastic, Mater. Today: Proc., 37, 1634–1639.

[5] Méité, N., Konan, L.K., Tognonvi, M.T., Doubi, B.I.H.G., Gomina, M., and Oyetola, S., 2021, Properties of hydric and biodegradability of cassava starch-based bioplastics reinforced with thermally modified kaolin, Carbohydr. Polym., 254, 117322.

[6] Ezeoha, S.L., and Ezenwanne, J.N., 2013, Production of biodegradable plastic packaging film from cassava starch, IOSR J. Eng., 3 (10), 14–20.

[7] Ashok, A., Abhijith, R., and Rejeesh, C.R., 2018, Material characterization of starch derived biodegradable plastics and its mechanical property estimation, Mater. Today: Proc., 5 (1), 2163–2170.

[8] Garg, S., and Jana, A.K., 2014, Preparation of LDPE-acetylated/butyrylated starch blend blow films and characterization, Chin. J. Polym. Sci., 32 (3), 268–279.

[9] Zárate-Ramírez, L.S., Romero, A., Bengoechea, C., Partal, P., and Guerrero, A., 2014, Thermo-mechanical and hydrophilic properties of polysaccharide/gluten-based bioplastics, Carbohydr. Polym., 112, 16–23.

[10] Imre, B., and Pukánszky, B., 2013, Compatibilization in bio-based and biodegradable polymer blends, Eur. Polym. J., 49 (6), 1215–1233.

[11] Mengual, A., Juárez, D., Balart, R., and Ferrándiz, S., 2017, PE-g-MA, PP-g-MA and SEBS-g-MA compatibilizers used in material blends, Procedia Manuf., 13, 321–326.

[12] Panrong, T., Karbowiak, T., and Harnkarnsujarit, N., 2020, Effects of acetylated and octenyl-succinated starch on properties and release of green tea compounded starch/LLDPE blend films, J. Food Eng., 284, 110057.

[13] Pavlík, Z., Pavlíková, M., and Záleská, M., 2019, “Properties of Concrete with Plastic Polypropylene Aggregates” in Use of Recycled Plastics in Eco-efficient Concrete, Eds. Pacheco-Torgal, F., Khatib, J., Colangelo, F., and Tuladhar, R., Woodhead Publishing, UK, 189–213.

[14] Obasi, H.C., Egeolu, F.C., and Oparaji, O.D., 2015, Comparative analysis of the tensile and biodegradable performances of some selected modified starch filled polypropylene blends, Am. J. Chem. Mater. Sci., 2 (2), 6–13.

[15] Obasi, H.C., and Igwe, I.O., 2014, Cassava starch-mixed polypropylene biodegradable polymer: Preparation, characterization and effects of biodegradation products on growth of plants, Int. J. Sci. Res., 3 (7), 802–807.

[16] Abdorreza, M.N., Cheng, L.H., and Karim, A.A., 2011, Effects of plasticizers on thermal properties and heat sealability of sago starch films, Food Hydrocolloids, 25 (1), 56–60.

[17] Zaman, H.U., and Beg, M.D.H., 2021, Study on binary low-density polyethylene (LDPE)/thermoplastic sago starch (TPS) blend composites, Prog. Appl. Sci. Technol., 11 (1), 53–65.

[18] Ramírez-Hernández, A., Hernández-Mota, C.E., Páramo-Calderón, D.E., González-García, G., Báez-García, E., Rangel-Porras, G., Vargas-Torres, A., and Aparicio-Saguilán, A., 2020, Thermal, morphological and structural characterization of a copolymer of starch and polyethylene, Carbohydr. Res., 488, 107907.

[19] Abdul Majid, R., Ismail, H., and Mat Taib, R., 2009, Effects of PE-g-MA on tensile properties, morphology and water absorption of LDPE/thermoplastic sago starch blends, Polym.-Plast. Technol. Eng., 48 (9), 919–924.

[20] Maran, J.P., Sivakumar, V., Thirugnanasambandham, K., and Sridhar, R., 2014, Degradation behavior of biocomposites based on cassava starch buried under indoor soil conditions, Carbohydr. Polym., 101 (1), 20–28.

[21] Mayasari, H.E., Setyorini, I., and Yuniari, A., 2019, The blending of EPDM/NR with maleic anhydride as compatibilizer: Comparing the effect of accelerators on cure characteristic and mechanical properties, Indones. J. Chem., 19 (1), 106–114.

[22] Islam, H.B.M.Z., Susan, M.A.B.H., and Imran, A.B., 2020, Effects of plasticizers and clays on the physical, chemical, mechanical, thermal, and morphological properties of potato starch-based nanocomposite films, ACS Omega, 5 (28), 17543–17552.

[23] Changwichan, K., Silalertruksa, T., and Gheewala, S.H., 2018, Eco-efficiency assessment of bioplastics production systems and end-of-life options, Sustainability, 10 (4), 1–15.

[24] Polman, E.M.N., Gruter, G.J.M., Parsons, J.R., and Tietema, A., 2021, Comparison of the aerobic biodegradation of biopolymers and the corresponding bioplastics: A review, Sci. Total Environ., 753, 141953.

[25] Wang, Y.G., Nie, X.A., and Liu, Z.X., 2014, Biodiesel synthesis from styrax tonkinensis catalyzed by S2O82–/ZrO2-TiO2-Fe3O4, Appl. Mech. Mater., 521, 621–625.

[26] Sahari, J., Sapuan, S.M., Zainudin, E.S., and Maleque, M.A., 2013, Thermo-mechanical behaviors of thermoplastic starch derived from sugar palm tree (Arenga pinnata), Carbohydr. Polym., 92 (2), 1711–1716.

[27] Nascimento, T.A., Calado, V., and Carvalho, C.W.P., 2012, Development and characterization of flexible film based on starch and passion fruit mesocarp flour with nanoparticles, Food Res. Int., 49 (1), 588–595.

[28] Bagri, R., and Williams, P.T., 2002, Catalytic pyrolysis of polyethylene, J. Anal. Appl. Pyrolysis, 63 (1), 29–41.



DOI: https://doi.org/10.22146/ijc.68558

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