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Novel application of magnetic nano-carbon composite as redox mediator in the reductive biodegradation of iopromide in anaerobic continuous systems

机译:磁性纳米碳复合材料作为氧化还原介质在厌氧连续系统中碘丙胺还原性生物降解中的新应用

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摘要

The redox-mediating capacity of magnetic reduced graphene oxide nanosacks (MNS) to promote the reductive biodegradation of the halogenated pollutant, iopromide (IOP), was tested. Experiments were performed using glucose as electron donor in an upflow anaerobic sludge blanket (UASB) reactor under methanogenic conditions. Higher removal efficiency of IOP in the UASB reactor supplied with MNS as redox mediator was observed as compared with the control reactor lacking MNS. Results showed 82 % of IOP removal efficiency under steady state conditions in the UASB reactor enriched with MNS, while the reactor control showed IOP removal efficiency of 51 %. The precise microbial transformation pathway of IOP was elucidated by high-performance liquid chromatography coupled to mass spectroscopy (HPLC-MS) analysis. Biotransformation byproducts with lower molecular weight than IOP molecule were identified in the reactor supplied with MNS, which were not detected in the reactor control, indicating the contribution of these magnetic nano-carbon composites in the redox conversion of this halogenated pollutant. Reductive reactions of IOP favored by MNS led to complete dehalogenation of the benzene ring and partial rupture of side chains of this pollutant, which is the first step towards its complete biodegradation. Possible reductive mechanisms that took place in the biodegradation of IOP were stated. Finally, the novel and successful application of magnetic graphene composites in a continuous bioreactor to enhance the microbial transformation of IOP was demonstrated.
机译:测试了磁性还原氧化石墨烯纳米袋(MNS)的氧化还原介导能力,以促进卤代污染物碘化丙啶(IOP)的还原性生物降解。在产甲烷条件下,在上流厌氧污泥层(UASB)反应器中使用葡萄糖作为电子供体进行实验。与缺少MNS的对照反应器相比,在以MNS作为氧化还原介质的UASB反应器中,IOP的去除效率更高。结果表明,在稳定状态下,富含MNS的UASB反应器中的IOP去除效率为82%,而反应器对照显示IOP的去除率为51%。通过高效液相色谱-质谱联用(HPLC-MS)分析阐明了IOP的精确微生物转化途径。在装有MNS的反应器中鉴定出分子量比IOP分子低的生物转化副产物,但在反应器控制中未检测到,表明这些磁性纳米碳复合物对该卤化污染物的氧化还原转化有贡献。 MNS促进的IOP还原反应导致苯环完全脱卤和该污染物侧链部分断裂,这是迈向其完全生物降解的第一步。阐述了在IOP的生物降解中可能发生的还原机制。最后,证明了磁性石墨烯复合物在连续生物反应器中增强IOP微生物转化的新颖成功的应用。

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