Effect of tartaric acid and castor oil on the characteristics of low-density polyethylene/thermoplastic starch composite films

IF 6.5 Q1 CHEMISTRY, APPLIED
Narges Jannatiha , Nasser Sedaghat , Seyed Mohammad Ali Razavi
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引用次数: 0

Abstract

Low-density polyethylene (LDPE) and thermoplastic starch (TPS) films containing varying concentrations of tartaric acid (0, 1.5, and 3 %) and castor oil (0, 1, and 2 %) were produced using an extrusion process. Field-emission scanning electron microscopy images confirmed a smooth and homogeneous surface with the combination of tartaric acid (TA) and castor oil (CO), indicating good compatibility between the polymer components. The formation of starch ester bonds with TA and CO was observed in the Fourier transform infrared spectroscopy spectrum. Dynamic mechanical thermal analysis results demonstrated that the addition of TA and CO to the LDPE/TPS films resulted in a decrease in the glass transition temperature and a positive change in the storage modulus. The sample with the highest biodegradability percentage was LDPE/TPS/TA3 %/CO1 %, which achieved a biodegradability rate of 34.46 %. This was attributed to acid hydrolysis and a reduction in the polymer's molecular weight over a six-month period of storage in soil. The water solubility, contact angle, and water vapor permeability of the sample LDPE/TPS/TA3 %/CO1 % were measured at 9 %, 88.35°, and 3.51 × 10–6 gs-1m-1Pa-1 respectively. The mechanical properties of the composite films improved with the addition of TA and CO due to the cross-linking effect; specifically, the tensile strength, elongation at break, and heat seal strength of LDPE/TPS/TA3 %/CO1 % were 9.77 MPa, 8.48 %, and 8.45 MPa, respectively. The highest opacity value was recorded for the sample LDPE/TPS/TA3 %/CO2 %, which measured 12.55, surpassing the other samples. The melt flow index of the sample LDPE/TPS/TA3 %/CO1 % was determined to be 6.27 g/10 min, while the sample LDPE/TPS/TA3 % had a melt flow index of 9.70 g/10 min. The addition of TA and CO also enhanced the oxygen barrier properties of the films.
酒石酸和蓖麻油对低密度聚乙烯/热塑性淀粉复合薄膜性能的影响
低密度聚乙烯(LDPE)和热塑性淀粉(TPS)薄膜含有不同浓度的酒石酸(0、1.5和3%)和蓖麻油(0、1和2%)使用挤压工艺生产。场发射扫描电镜图像证实,酒石酸(TA)和蓖麻油(CO)的组合表面光滑均匀,表明聚合物组分之间具有良好的相容性。在傅里叶变换红外光谱中观察到淀粉酯与TA和CO形成键。动态力学热分析结果表明,TA和CO的加入使LDPE/TPS薄膜的玻璃化转变温度降低,存储模量呈正变化。生物降解率最高的样品为LDPE/TPS/TA3 %/CO1 %,生物降解率为34.46%。这是由于酸水解和聚合物在土壤中储存六个月后分子量的减少。测定了样品LDPE/TPS/TA3 %/CO1 %在9%、88.35°和3.51 × 10-6 gs-1m-1Pa-1时的水溶性、接触角和水蒸气渗透率。由于交联效应,TA和CO的加入提高了复合膜的力学性能;LDPE/TPS/TA3 %/CO1 %的拉伸强度、断裂伸长率和热封强度分别为9.77 MPa、8.48%和8.45 MPa。LDPE/TPS/TA3 %/CO2 %的不透明度值最高,为12.55,超过其他样品。LDPE/TPS/TA3 %/CO1 %样品的熔体流动指数为6.27 g/10 min, LDPE/TPS/TA3 %样品的熔体流动指数为9.70 g/10 min。TA和CO的加入也增强了膜的阻氧性能。
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CiteScore
8.70
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