微生物生物质含量对聚(3-羟基丁酸)复合材料生物降解和机械性能的影响。

IF 3.1 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Felix Eckel, Korbinian Sinzinger, Daniel Van Opdenbosch, Doris Schieder, Volker Sieber, Cordt Zollfrank
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引用次数: 0

摘要

本文首次研究了绿藻和蓝藻与聚(3-羟基丁酸酯)(PHB)复合材料的生物降解率和机械性能。据作者所知,添加微生物生物质对生物降解的影响是迄今为止观察到的最大的。与 PHB 或单独的生物质相比,添加了微生物生物质的复合材料在 132 天内的生物降解速度加快,累积生物降解量增加。为了确定生物降解速度加快的原因,对分子量、结晶度、吸水率、微生物生物质成分和扫描电子显微镜图像进行了评估。复合材料中 PHB 的分子量低于纯 PHB,而所有样品的结晶度和微生物生物量组成相同。无法观察到吸水率和结晶度与生物降解率的直接相关性。虽然在样品制备过程中 PHB 分子重量的降解有助于生物降解的改善,但主要原因是添加的生物质起到了生物刺激作用。由此产生的生物降解速率的提高在聚合物生物降解领域似乎是独一无二的。与纯 PHB 相比,拉伸强度降低,断裂伸长率保持不变,杨氏模量增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influence of microbial biomass content on biodegradation and mechanical properties of poly(3-hydroxybutyrate) composites

Influence of microbial biomass content on biodegradation and mechanical properties of poly(3-hydroxybutyrate) composites

Biodegradation rates and mechanical properties of poly(3-hydroxybutyrate) (PHB) composites with green algae and cyanobacteria were investigated for the first time. To the authors knowledge, the addition of microbial biomass led to the biggest observed effect on biodegradation so far. The composites with microbial biomass showed an acceleration of the biodegradation rate and a higher cumulative biodegradation within 132 days compared to PHB or the biomass alone. In order to determine the causes for the faster biodegradation, the molecular weight, the crystallinity, the water uptake, the microbial biomass composition and scanning electron microscope images were assessed. The molecular weight of the PHB in the composites was lower than that of pure PHB while the crystallinity and microbial biomass composition were the same for all samples. A direct correlation of water uptake and crystallinity with biodegradation rate could not be observed. While the degradation of molecular weight of PHB during sample preparation contributed to the improvement of biodegradation, the main reason was attributed to biostimulation by the added biomass. The resulting enhancement of the biodegradation rate appears to be unique in the field of polymer biodegradation. The tensile strength was lowered, elongation at break remained constant and Young’s modulus was increased compared to pure PHB.

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来源期刊
Biodegradation
Biodegradation 工程技术-生物工程与应用微生物
CiteScore
5.60
自引率
0.00%
发文量
36
审稿时长
6 months
期刊介绍: Biodegradation publishes papers, reviews and mini-reviews on the biotransformation, mineralization, detoxification, recycling, amelioration or treatment of chemicals or waste materials by naturally-occurring microbial strains, microbial associations, or recombinant organisms. Coverage spans a range of topics, including Biochemistry of biodegradative pathways; Genetics of biodegradative organisms and development of recombinant biodegrading organisms; Molecular biology-based studies of biodegradative microbial communities; Enhancement of naturally-occurring biodegradative properties and activities. Also featured are novel applications of biodegradation and biotransformation technology, to soil, water, sewage, heavy metals and radionuclides, organohalogens, high-COD wastes, straight-, branched-chain and aromatic hydrocarbons; Coverage extends to design and scale-up of laboratory processes and bioreactor systems. Also offered are papers on economic and legal aspects of biological treatment of waste.
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