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Simultaneously Toughening and Strengthening Soy Protein Isolate-Based Composites via Carboxymethylated Chitosan and Halloysite Nanotube Hybridization

机译:通过羧甲基化壳聚糖和埃洛石纳米管杂交同时增韧基于大豆蛋白分离物的复合材料

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Chemical cross-linking modification can significantly enhance the tensile strength (TS) of soy protein isolate (SPI)-based composites, but usually at the cost of a reduction in the elongation at break (EB). In this study, eco-friendly and high-potential hybrid SPI-based nanocomposites with improved TS were fabricated without compromising the reduction of EB. The hybrid of carboxymethylated chitosan (CMCS) and halloysite nanotubes (HNTs) as the enhancement center was added to the SPI and 1,2,3-propanetriol-diglycidyl-ether (PTGE) solution. The chemical structure, crystallinity, micromorphology, and opacity properties of the obtained SPI/PTGE/HNTs/CMCS film was analyzed by the attenuated total reflectance-Fourier transform infrared (ATR-FTIR) spectroscopy, X-ray photoelectron spectroscopy (XPS), X-ray diffraction (XRD), scanning electron microscopy (SEM), atomic force microscopy (AFM), and UV-Vis spectroscopy. The results indicated that HNTs were uniformly dispersed in the SPI matrix without crystal structure damages. Compared to the SPI/PTGE film, the TS and EB of the SPI/PTGE/HNTs/CMCS film were increased by 57.14% and 27.34%, reaching 8.47 MPa and 132.12%, respectively. The synergy of HNTs and CMCS via electrostatic interactions also improved the water resistance of the SPI/PTGE/HNTs/CMCS film. These films may have considerable potential in the field of sustainable and environmentally friendly packaging.
机译:化学交联改性可以显着提高基于大豆蛋白分离物(SPI)的复合材料的拉伸强度(TS),但通常以降低断裂伸长率(EB)为代价。在这项研究中,在不损害EB降低的前提下,制造了具有改进的TS的生态友好型和高潜力的基于SPI的混合纳米复合材料。将羧甲基化壳聚糖(CMCS)和埃洛石纳米管(HNTs)作为增强中心的杂化物添加到SPI和1,2,3-丙三醇-二缩水甘油醚(PTGE)溶液中。通过衰减全反射-傅里叶变换红外(ATR-FTIR)光谱,X射线光电子能谱(XPS),X分析了所得SPI / PTGE / HNTs / CMCS膜的化学结构,结晶度,微观形貌和不透明性射线衍射(XRD),扫描电子显微镜(SEM),原子力显微镜(AFM)和紫外可见光谱。结果表明,HNTs均匀分散在SPI基质中,而没有破坏晶体结构。与SPI / PTGE膜相比,SPI / PTGE / HNTs / CMCS膜的TS和EB分别增加了57.14%和27.34%,分别达到8.47 MPa和132.12%。 HNT和CMCS通过静电相互作用的协同作用还改善了SPI / PTGE / HNTs / CMCS膜的耐水性。这些薄膜在可持续和环保包装领域可能具有相当大的潜力。

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