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Synergistic interaction of biocatalyst with bio-anode as a function of electrode materials

机译:生物催化剂与生物阳极的协同相互作用与电极材料的关系

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Comprehensive study was performed to understand the synergistic interaction between the biocatalyst and anode in terms of electron discharge (ED) pattern and microbial growth by varying electrode (bio-anode) materials viz., graphite, aluminum, brass, copper, nickel and stainless steel. Experiments were performed in bio-electrochemical cell consisting of three electrodes (bio-anode as working electrode, carbon rod as counter electrode and Ag/AgCl(S) as reference electrode) employing anaerobic mixed culture as anodic biocatalyst. Voltam-metric and chronoamperometric analysis were used to enumerate the ED and redox reactions. Presence of higher microbial population and dominance of Gram positive bacteria with higher ED supported graphite function as a good bio-anode material. Nickel and stainless steel showed higher ED after graphite associated with dominance of Gram positive bacterial population. Although higher ED was noticed with brass, metal oxidation and decrement in ED with time doesn't support its function as bio-anode. In spite of higher ED than nickel and stainless steel, aluminum and copper showed significant metal oxidation leading to change in both physical and electrochemical properties along with dominant growth of Gram negative bacteria. This study gives a comprehensive idea on biocatalyst interaction with anode in extracellular electron transfer which is important in improving the anode performance. Juxtaposing the results, it can be deduced that the outcome of the present study can be extended to all bio-electrochemical systems including microbial fuel cell (MFC).
机译:进行了全面的研究,以了解通过改变电极(生物阳极)材料(例如石墨,铝,黄铜,铜,镍和不锈钢)在电子放电(ED)模式和微生物生长方面生物催化剂与阳极之间的协同相互作用。 。在由三个电极(生物阳极作为工作电极,碳棒作为对电极,Ag / AgCl(S)作为参比电极)组成的生物电化学电池中进行实验,采用厌氧混合培养作为阳极生物催化剂。伏安法和计时安培分析法用于列举ED和氧化还原反应。较高的微生物种群和具有较高ED负载石墨的革兰氏阳性细菌占主导地位,是一种良好的生物阳极材料。石墨后,镍和不锈钢的ED值较高,这与革兰氏阳性细菌种群的优势有关。尽管在黄铜中发现较高的ED,但随着时间的流逝,ED中的金属氧化和减少并不支持其作为生物阳极的功能。尽管ED比镍和不锈钢高,但铝和铜仍显示出明显的金属氧化,导致物理和电化学性质发生变化,同时革兰氏阴性菌显着生长。这项研究给出了在细胞外电子转移中生物催化剂与阳极相互作用的全面思路,这对提高阳极性能很重要。将结果并列,可以推断出本研究的结果可以扩展到包括微生物燃料电池(MFC)在内的所有生物电化学系统。

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