Tafa Kenenisa Dekeba, Satheesh Neela, Abera Worku
Department of Food Process Engineering, College of Engineering and Technology, Wolkite University, Wolkite, Ethiopia.
Faculty of Chemical and Food Engineering, Bahir Dar Institute of Technology, Bahir Dar, Ethiopia.
Heliyon. 2023 Jan 24;9(2):e13160. doi: 10.1016/j.heliyon.2023.e13160. eCollection 2023 Feb.
The non-biodegradable synthetic plastic is one of the greatest challenges facing the food packaging business since it seriously harms the environment. To solve this problem, non-biodegradable plastic may be disposed of more affordably and with less harm on the environment by using edible starch-based biodegradable film. Therefore, the present study was focused on the development and optimization of tef starch based edible films based on mechanical properties. In this study response surface methodology was employed by considering 3-5g of tef starch, 0.3-0.5% of agar and 0.3-0.5% of glycerol. The prepared film showed the tensile strength of 17.97-24.25 Mpa, elongation break of 1.21-2.03%, elastic modulus of 17.58-108.69 MPa, puncture force of 2.55-15.02 N, puncture formation of 9.59-14.95 mm. The findings showed that as glycerol concentrations in the film-forming solution increased, the prepared tef starch edible films' tensile strength, elastic modulus, and puncture force declined while their elongation at break and puncture deformation increased. Tef starch edible films' mechanical characteristics, including as tensile strength, elastic modulus, and puncture force, were increased by the increase of agar concentration. The optimized (from 5 gm tef starch, 0.4 g agar and 0.3% glycerol) tef starch edible film exhibited higher tensile strength, elastic modulus, and puncture force while lower elongation at break and puncture deformation. The composite edible film based tef starch with agar exhibited good mechanical properties and can be suggested for application in food industry as food packaging.
不可生物降解的合成塑料是食品包装行业面临的最大挑战之一,因为它严重危害环境。为了解决这个问题,通过使用可食用的淀粉基可生物降解薄膜,可以更经济实惠且对环境危害更小地处理不可生物降解塑料。因此,本研究聚焦于基于机械性能开发和优化tef淀粉基可食用薄膜。在本研究中,采用响应面法,考虑3 - 5克tef淀粉、0.3 - 0.5%的琼脂和0.3 - 0.5%的甘油。制备的薄膜显示出拉伸强度为17.97 - 24.25兆帕、断裂伸长率为1.21 - 2.03%、弹性模量为17.58 - 108.69兆帕、穿刺力为2.55 - 15.02牛、穿刺形成量为9.59 - 14.95毫米。研究结果表明,随着成膜溶液中甘油浓度的增加,制备的tef淀粉可食用薄膜的拉伸强度、弹性模量和穿刺力下降,而其断裂伸长率和穿刺变形增加。琼脂浓度的增加提高了tef淀粉可食用薄膜的机械性能,包括拉伸强度、弹性模量和穿刺力。优化后的(由5克tef淀粉、0.4克琼脂和0.3%甘油制成)tef淀粉可食用薄膜表现出更高的拉伸强度、弹性模量和穿刺力,同时断裂伸长率和穿刺变形更低。含有琼脂的tef淀粉复合可食用薄膜具有良好的机械性能,可建议用于食品工业作为食品包装。