利用不同农业残留副产品开发菌丝体生物复合材料及其表征

IF 20.2 Q1 MATERIALS SCIENCE, PAPER & WOOD
Liucheng Peng , Jing Yi , Xinyu Yang , Jing Xie , Chenwei Chen
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引用次数: 13

摘要

利用水稻秸秆、甘蔗渣、椰子髓、锯末和玉米秸秆等不同的农业残余副产品基质培养平菇菌丝,制备了平菇菌丝生物复合材料。扫描电镜(SEM)结果表明,以甘蔗渣为原料的复合菌丝密度最大,菌丝直径最大(0.77µm),这可能是由于甘蔗渣中纤维素以葡聚糖和木聚糖的形式存在所致。木屑基材的最大抗压强度为456.70,玉米秸秆基材的最小抗压强度为270.31 kPa。甘蔗渣基材和稻草基材的抗弯强度分别为0.54和0.16 MPa。以稻秆和甘蔗渣为原料制备的两种复合材料具有较高的疏水性。相比之下,甘蔗渣菌丝体生物复合材料的综合性能最好。菌丝体生物复合材料除抗蠕变性能和防水性能稍差外,其他性能可与商业膨胀聚苯乙烯(EPS)包装材料相媲美。该研究为菌丝体材料提供了一种很好的利用农业残留副产品的方法,可以很好地替代非生物降解材料用于包装。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and characterization of mycelium bio-composites by utilization of different agricultural residual byproducts

Mycelium bio-composites was developed by incubating Pleurotus ostreatus fungi on different substrates from agricultural residual byproducts, including rice straw, bagasse, coir-pith, sawdust, and corn straw. The scanning electron microscope (SEM) results showed that the hypha of composite derived from bagasse was the densest, and the diameter of hypha was the biggest (0.77 µm), which was presumably due to the existence of cellulose in bagasse in the form of dextran and xylan. The maximum and minimum compression strength for sawdust substrate and corn straw substrate were 456.70 and 270.31 kPa, respectively. The flexural strength for bagasse substrate and rice straw substrate were 0.54 and 0.16 MPa, respectively. The two composites derived from rice straw and bagasse exhibited higher hydrophobic properties than others. In comparison, mycelium bio-composite derived from bagasse showed the best comprehensive properties. Except for a little worse anti-creep ability and waterproof performance, other properties of mycelium bio-composites could be comparable to commercially expanded polystyrene (EPS) packaging material. Derived from this study, mycelium material provided a good way to use agricultural residual byproducts and could be a good alternative to non-biodegradable materials for packaging applications.

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来源期刊
Journal of Bioresources and Bioproducts
Journal of Bioresources and Bioproducts Agricultural and Biological Sciences-Forestry
CiteScore
39.30
自引率
0.00%
发文量
38
审稿时长
12 weeks
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