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乳清蛋白浓缩物/蒙脱石/番茄红素薄膜的机械和结构表征

Mechanical and structural characterization of whey protein concentrate/montmorillonite/lycopene films.

作者信息

Pereira Rafaela C, Carneiro João de Deus S, Assis Odílio Bg, Borges Soraia V

机构信息

Department of Food Science, Federal University of Lavras, Lavras, (MG), Brazil.

Embrapa Instrumentação (CNPDIA), São Carlos, (SP), Brazil.

出版信息

J Sci Food Agric. 2017 Nov;97(14):4978-4986. doi: 10.1002/jsfa.8376. Epub 2017 May 22.

Abstract

BACKGROUND

The production/characterization of nanocomposites based on whey protein concentrate (WPC) and montmorillonite (MMT) with lycopene as functional substance is presented and their potential use as alternative biomaterials in foodstuff applications is discussed. A full factorial design with varying levels of MMT (0 and 20 g kg ) and lycopene (0, 60 and 120 g kg ) was used. The mechanical properties (tensile and puncture tests), thermal stability, Fourier transform infrared vibrational spectra and film morphology of the resulting materials were evaluated.

RESULTS

Lycopene and MMT nanoparticles could be successfully included in WPC films using the casting/evaporation method. The films were flexible and homogeneous and a uniform dispersion of the components was achieved.

CONCLUSION

Inclusion of 20 g kg of MMT in the polymeric matrix improved both mechanical and thermal properties. Lycopene at the tested concentrations, besides its red coloring ability, did not promote any detectable interference in the structural or physical properties. These findings are important in devising applications and open a new perspective on the use of these materials in bioactive packaging processing. © 2017 Society of Chemical Industry.

摘要

背景

本文介绍了以乳清浓缩蛋白(WPC)和蒙脱石(MMT)为基础、以番茄红素为功能物质的纳米复合材料的制备及表征,并讨论了其在食品应用中作为替代生物材料的潜在用途。采用了一个全因子设计,其中MMT(0和20 g/kg)和番茄红素(0、60和120 g/kg)的含量各不相同。对所得材料的力学性能(拉伸和穿刺试验)、热稳定性、傅里叶变换红外振动光谱和薄膜形态进行了评估。

结果

采用流延/蒸发法可成功地将番茄红素和MMT纳米颗粒纳入WPC薄膜中。薄膜具有柔韧性且均匀,各组分实现了均匀分散。

结论

在聚合物基体中加入20 g/kg的MMT可改善力学性能和热性能。在所测试的浓度下,番茄红素除了具有红色着色能力外,对结构或物理性能没有任何可检测到的干扰。这些发现对于设计应用具有重要意义,并为这些材料在生物活性包装加工中的应用开辟了新的前景。© 2017化学工业协会。

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