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首页> 外文期刊>Journal of Hazardous Materials >Microbial degradation of high impact polystyrene (HIPS), an e-plastic with decabromodiphenyl oxide and antimony trioxide
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Microbial degradation of high impact polystyrene (HIPS), an e-plastic with decabromodiphenyl oxide and antimony trioxide

机译:十溴二苯醚和三氧化二锑的电子塑料高抗冲聚苯乙烯(HIPS)的微生物降解

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摘要

Accumulation of electronic waste has increased catastrophically and out of that various plastic resins constitute one of the leading thrown out materials in the electronic machinery. Enrichment medium, containing high impact polystyrene (HIPS) with decabromodiphenyl oxide and antimony trioxide as sole carbon source, was used to isolate microbial cultures. The viability of these cultures in the e-plastic containing mineral medium was further confirmed by triphenyl tetrazolium chloride (TTC) reduction test. Four cultures were identified by 16S rRNA sequencing as Enterobacter sp., Citrobacter sedlakii, Alcaligenes sp. and Brevundimonas diminuta. Biodegradation experiments were carried out in flask level and gelatin supplementation (0.1% w/v) along with HIPS had increased the degradation rate to a maximum of 12.4% (w/w) within 30 days. This is the first report for this kind of material. The comparison of FTIR, NMR, and TGA analysis of original and degraded e-plastic films revealed structural changes under microbial treatment. Polystyrene degradation intermediates in the culture supernatant were also detected using HPLC analysis. The gravity of biodegradation was validated by morphological changes under scanning electron microscope. All isolates displayed depolymerase activity to substantiate enzymatic degradation of e-plastic. (C) 2016 Elsevier B.V. All rights reserved.
机译:电子废物的累积急剧增加,并且各种塑料树脂构成了电子机械中最主要的废弃材料之一。含有高抗冲聚苯乙烯(HIPS)和十溴二苯醚和三氧化二锑作为唯一碳源的富集培养基用于分离微生物培养物。这些培养物在含电子塑料的矿物培养基中的生存力通过三苯基氯化四唑(TTC)还原测试得到了进一步证实。通过16S rRNA测序鉴定出四种培养物,分别为肠杆菌属,sedlakii柠檬杆菌,产碱菌。和Brevundimonas diminuta。在烧瓶水平上进行了生物降解实验,明胶补充(0.1%w / v)和HIPS在30天内将降解率提高到最大12.4%(w / w)。这是此类材料的第一份报告。原始和降解的电子塑料薄膜的FTIR,NMR和TGA分析的比较显示了微生物处理后的结构变化。还使用HPLC分析检测培养上清液中的聚苯乙烯降解中间体。通过在扫描电子显微镜下的形态变化来验证生物降解的重力。所有分离株均表现出解聚酶活性以证实电子塑料的酶促降解。 (C)2016 Elsevier B.V.保留所有权利。

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