首页> 外文期刊>Journal of soils & sediments >Enhanced degradation of pyrene and phenanthrene in sediments through synergistic interactions between microbial fuel cells and submerged macrophyte Vallisneria spiralis
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Enhanced degradation of pyrene and phenanthrene in sediments through synergistic interactions between microbial fuel cells and submerged macrophyte Vallisneria spiralis

机译:通过微生物燃料电池与淹没的宏观物质Vallisneria Spiralis之间的协同相互作用,增强了沉积物中沉积物中沉积物的降解

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Purpose Submerged macrophyte Vallisneria spiralis and sediment microbial fuel cell (SMFC) systems are cost-effective methods for the remediation of polycyclic aromatic hydrocarbon (PAH)-polluted sediments. This study evaluates whether the combination of these two ecological approaches could further improve the removal efficiency of PAHs from sediments and investigates the possible mechanisms of removal.Materials and methods Sediments, macrophytes, electrodes, and plexiglass columns were used to construct an experimental microcosm. A 65-day comparative study was performed with six treatments as follows: SMFC without PAH (SMFC); PAH only (PAH); SMFC with PAH (SMFC-PAH); V. spiralis without PAH (macrophyte); V. spiralis with PAH (macrophyte-PAH); V. spiralis with SMFC and PAH (M-SMFC-PAH). Pyrene and phenanthrene were added to raw sediments to obtain initial PAH concentrations of 10 mgkg(-1) dry sediment. The monitored parameters were sediment oxidation-reduction potential (ORP); low molecular weight organic acids (LMWOAs) and Fe (II) concentrations in pore water; electron acceptor (sulfate and Fe (III)), humic acid (HA), and PAH concentrations in sediments; and plant morphology and root physiology. High-throughput 16S rRNA gene sequencing was also performed to assist mechanistic understanding.Results and discussion The M-SMFC-PAH treatment obtained the highest sediment ORP and PAH removal efficiency. The average ORP level in M-SMFC-PAH was increased by 57.2, 59.1, and 168.4 mV, compared with the SMFC-PAH, macrophyte-PAH, and PAH-only treatments, respectively, with a mean value of 121.7 mV observed during the whole experimental period. The pyrene (phenanthrene) dissipation ratios at the end of the experimental period were 29.1% (35.4%), 45.5% (56.3%), 59.8% (67.3%), and 79.4% (88.2%) for PAH only, SMFC-PAH, macrophyte-PAH, and M-SMFC-PAH treatments, respectively. The highest correlation was observed between PAH concentration and sediment ORP value, in the coupled M-SMFC-PAH system.Conclusions Results suggest that the interactions between the anode and rhizosphere of V. spiralis were synergistic during PAH removal. The coexistence of anodic and rhizospheric oxygen loss in sediments had a synergistic effect on PAH degradation. Plant presence facilitated the electrogenic degradation of PAHs. The inhibited growth of V. spiralis due to PAH toxicity was reduced by electrogenesis, thus facilitating the removal of vegetable PAHs from sediments. Coordinated growth of anaerobic and aerobic PAH degrading bacteria on the anode was a key factor in the optimal removal of PAHs in coupled systems.
机译:目的浸没式宏观物质Vallisneria螺旋和泥沙微生物燃料电池(SMFC)系统是用于修复多环芳烃(PAH)型沉积物的经济有效方法。该研究评估了这两种生态方法的组合是否可以进一步提高沉积物中PAHS的去除效率,并研究了用于构建实验微观的材料和方法沉积物的可能机制和方法沉积物,宏观物质,电极和有机玻璃柱。 65天的比较研究进行了六项治疗,如下:没有PAH(SMFC)的SMFC;只有(PAH); SMFC与PAH(SMFC-PAH); V.螺螺肌肉没有PAH(宏观物质); V. Spiralis用Pah(宏观物质-PAH); V. Spiralis与SMFC和PAH(M-SMFC-PAH)。将芘和菲添加到原料沉积物中,得到10mgKg(-1)干燥沉积物的初始PAH浓度。监测的参数是沉积物氧化还原电位(ORP);低分子量有机酸(LMWOAs)和孔水中的Fe(II)浓度;电子受体(硫酸铁和Fe(III)),腐殖酸(HA)和PAH浓度在沉积物中;和植物形态和根生理学。还进行了高通量16S RRNA基因测序以协助机械理解。结果和讨论M-SMFC-PAH处理获得了最高的沉积物ORP和PAH去除效率。与SMFC-PAH,Macrophyte-PAH和PAH-PAH和PAH的治疗相比,M-SMFC-PAH中的平均ORP水平分别增加57.2,59.1和168.4mV,分别观察到平均值121.7mV的平均值。整个实验期。实验期结束时的芘(菲苯乙烯)耗散比例为29.1%(35.4%),45.5%(56.3%),59.8%(67.3%),仅为PAH,SMFC-PAH的79.4%(88.2%) ,Macrophyte-Pah和M-SMFC-PAH治疗。在偶联的M-SMFC-PAH系统中,在PAH浓度和沉积物ORP值之间观察到最高的相关性。结论结果表明,在PAH去除期间,V.螺旋液的阳极和根际之间的相互作用是协同的。沉积物中阳极和根际氧损失的共存对PAH降解具有协同作用。植物存在促进了PAHS的电生降解。由于PAH毒性,抑制V.螺旋的抑制生长因电生发生而降低,从而促进从沉积物中除去蔬菜PAH。阳极上的厌氧和有氧PAH降解细菌的协调生长是耦合系统中PAHS最佳去除的关键因素。

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