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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Development of Self-Cross-Linked Soy Adhesive by Enzyme Complex from Aspergillus niger for Production of All-Biomass Composite Materials
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Development of Self-Cross-Linked Soy Adhesive by Enzyme Complex from Aspergillus niger for Production of All-Biomass Composite Materials

机译:从菊菌尼格斯尼格斯酶复合物进行自交联大豆粘合剂,生产全生物量复合材料

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摘要

With rising environmental and human health concerns, the development of wood adhesives has shifted from petrochemical feedstocks to low-cost biobased feedstocks. Here we report a novel approach to prepare a sustainable and environmentally friendly soy adhesive. A low-cost fermentation broth of Aspergillus niger contained an enzyme complex that showed excellent performance in hydrolyzing polysaccharides in defatted soy flour (DSF). Efficient hydrolysis of polysaccharides in DSF by this enzyme complex was proved by the increased reducing sugar concentration in hydrolysate, the decreased content of water-insoluble substances, and the weakened rheological properties of the slurry. It was further demonstrated that the resultant hydrolysate, namely, reducing sugars, could be cross-linked with soy protein, based on the thermogravimetric analyses, Fourier-transform infrared spectroscopy, atomic force microscopy nanomechanical mapping, and sol-gel tests. With the self-cross-linked structure, the enzyme-treated soy adhesive had significantly improved adhesive strength and water resistance as compared to that without the enzymatic hydrolysis. Particularly, the wet bonding strength of two-layer plywood increased by over 30%, showing great potential for preparing all-biomass composite materials in an industrial scale.
机译:随着环境和人类健康的兴趣上升,木材粘合剂的发展已经从石化原料转向低成本的生物原料。在这里,我们报告了一种新颖的方法来制备可持续和环保的大豆粘合剂。曲霉尼日尔的低成本发酵汤含有一种酶综合体,其在脱脂大豆面粉(DSF)中的水解多糖方面具有优异的性能。通过水解产物中的还原糖浓度增加,水解物质的降低含量和水不溶性物质的含量降低以及浆料的流变性质的降低,证明了这种酶复合物中多糖的高效水解。进一步证明,基于热重分析,傅里叶变换红外光谱,原子力显微镜纳米机械映射和溶胶 - 凝胶试验,所得水解产物,即还原糖,可以与大豆蛋白交联与大豆蛋白交联。通过自交联结构,与没有酶水解的情况相比,酶处理的大豆粘合剂具有显着提高的粘合强度和耐水性。特别地,两层胶合板的湿粘合强度增加超过30%,显示出在工业规模中制备全生物量复合材料的巨大潜力。

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