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低温等离子体制备CEO-SBA-15/马铃薯淀粉膜性能优化及结构表征
引用本文:郭艳丽,郭帅玉,崔英俊,程萌,张荣飞,王相友.低温等离子体制备CEO-SBA-15/马铃薯淀粉膜性能优化及结构表征[J].农业工程学报,2022,38(21):268-278.
作者姓名:郭艳丽  郭帅玉  崔英俊  程萌  张荣飞  王相友
作者单位:山东理工大学农业工程与食品科学学院,淄博 255000
基金项目:山东省自然科学基金项目(ZR2020QC244)
摘    要:为提高CEO-SBA-15在马铃薯淀粉膜中的分散性以增强复合膜的物理性能,通过低温等离子体处理制备改性的CEO-SBA-15/马铃薯淀粉膜,以等离子体处理时间,马铃薯淀粉、甘油、CEO-SBA-15用量为考察因素,对复合膜的性能进行正交试验优化,对其进行微观结构表征,以及对复合膜进行物理、透气以及光学试验。结果表明,等离子体处理使CEO-SBA-15较均匀地分散在马铃薯淀粉膜中,且适合等离子体合成复合膜的最佳因素配比为等离子体处理马铃薯淀粉溶液时间6 min,马铃薯淀粉用量5 g/100 mL、甘油用量1.5 g/100 mL、CEO-SBA-15用量0.5 g/100 mL。X-射线衍射光谱与傅里叶变换红外光谱分析证实等离子体处理淀粉改性使CEO-SBA-15与马铃薯淀粉分子间形成较强的氢键;紫外光谱分析表明等离子体处理的复合膜具有较好的抗紫外光作用以及较好的透光率。此外,等离子体合成的复合膜包装物理性能得到增强,其透氧率、透水率、溶胀度较未改性处理的复合膜分别降低了47.95%、94.56%、83.01%,拉伸强度提高了126.09%,可较好地保护食品内容物不受外界因素干扰以及机械损伤。

关 键 词:  优化  低温等离子体  改性CEO-SBA-15/马铃薯淀粉膜  分散性
收稿时间:2022/9/3 0:00:00
修稿时间:2022/10/17 0:00:00

Optimization of low-temperature plasma-modified preparation and structural characterization of potato starch films
Guo Yanli,Guo Shuaiyu,Cui Yingjun,Cheng Meng,Zhang Rongfei,Wang Xiangyou.Optimization of low-temperature plasma-modified preparation and structural characterization of potato starch films[J].Transactions of the Chinese Society of Agricultural Engineering,2022,38(21):268-278.
Authors:Guo Yanli  Guo Shuaiyu  Cui Yingjun  Cheng Meng  Zhang Rongfei  Wang Xiangyou
Institution:School of Agricultural Engineering and Food Science, Shandong University of Technology, Zibo 255000, China
Abstract:Potato starch can be widely expected to serve as the new alternative packaging material in food preservation in recent years, due to its excellent properties. The endogenous phosphate groups of potato starch can be ionically bonded to the surrounding polar hydroxyl groups. However, the research on potato starch is limited by the high water absorption and low gas resistance. Fortunately, the low-temperature plasma technology can be used to modify the potato starch for easy oxidation, cross-linking, depolymerization, the increase or decrease of hydrophilicity, and the introduction of functional groups, particularly for the better surface properties of potato starch. Cinnamon Essential Oil (CEO) can be added to the potato starch film as a bacteriostatic agent, in order to inhibit the activity of pathogenic, as well as decaying fungi and bacteria for better food safety. Nano-silica (SBA-15) can be used to wrap the Cinnamon Essential Oil (CEO) for slow and controlled release. The surface of SBA-15 often contains a large number of unsaturated residual bonds and weak acidic free Si-OH in the different bonding states. However, a large specific surface area of the SBA-15 is easy to agglomerate in the aqueous solution. The carboxyl group on the surface of modified potato starch is the hydrogen bond with the polar hydroxyl group on the surface of SBA-15. It is very necessary to improve the dispersion of CEO-SBA-15 in the potato starch film, together with the physical properties of the composite film. In this study, the modified CEO-SBA-15/potato starch film was prepared by low-temperature plasma modification. The investigation factors were taken as the plasma treatment time and the dosage of potato starch, glycerol, and CEO-SBA-15. The performance of the composite film was then optimized and screened by the single factor, orthogonal, and verification experiment. The optimized composite films were characterized by the surface morphology (Scanning Electron Microscope, SEM), phase change (X-Ray Diffraction spectroscopy, XRD), as well as the chemical bond and functional group (Fourier Transform Infrared Spectroscopy, FTIR). A systematic evaluation was performed on the oxygen and water vapor permeability, swelling degree, water solubility, opacity, tensile strength, UV spectrum, and Thermogravimetric analysis (TG). The results showed that the duration was 6 min for the optimum factor ratio in the preparation of modified potato composite film using the low-temperature plasma technology. The dosages of potato starch, glycerol, and CEO-SBA-15 were 5, 1.5, and 0.5 g/100 mL, respectively. The SEM images showed that there were circular depressions on the surface of plasma-treated potato starch. The CEO-SBA-15 was evenly dispersed in the composite film prepared by the plasma-treated potato starch solution. The XRD and FTIR showed that the plasma-modified potato starch formed a strong hydrogen bond with the CEO-SBA-15. The plasma-modified potato starch shared the formation of an oxidized carboxyl group and the reduction of a hydroxyl group. Ultraviolet (UV) spectrum analysis showed that the plasma-treated composite film presented better UV resistance and light transmittance. The TG showed that the plasma-modified potato starch composite film had better thermal stability. In addition, the physical properties were greatly improved in the potato starch composite film prepared by the plasma system. The oxygen permeability, water vapor permeability, and swelling degree of the composite film were reduced by 47.95%, 94.56%, and 83.01%, respectively, while the tensile strength of the composite film increased by 126.09%, compared with the unmodified composite film. The finding can provide a strong reference to better protect the food contents from external factors and mechanical damage.
Keywords:film  optimization  low temperature plasma  modified CEO-SBA-15/potato starch film  dispersion
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