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Effect of electrode surface properties on enhanced electron transfer activity in microbial fuel cells

机译:电极表面特性对微生物燃料电池电子传递活性增强的影响

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摘要

The influence of electrode surface chemistry over biofilm growth was evaluated for photo‐bioelectrocatalytic fuel cell. A consortium of photosynthetic bacteria was grown onto different electrodes designed with polyethylenimine (PEI) and multiwall carbon nanotubes as hydrophilic and hydrophobic modifier, respectively. The designed electrodes were loaded with 0.08, 0.17, and 0.33 μg/cm of PEI to change the hydrophilicity. However, 0.56, 0.72, and 0.83 mg/cm of multiwall carbon nanotubes were used to alter the hydrophobicity of the electrodes. The surface chemistry of electrode and bio‐interaction was evaluated as a function of contact angle and biofilm formation. The results were compared with those obtained with a carbon paper electrode. The contact angle on the untreated electrode (carbon paper) was 118°, whereas for hydrophobic and hydrophilic electrodes, the maximum and minimum contact angles were 170° and 0°, respectively. Interestingly, the maximum biofilm growth (0.2275 g, wet basis) was observed on highly hydrophobic surface; however, the maximum electrochemical performance (246 mV) was shown by the most hydrophilic electrode surface. PEI‐based electrode with good biofilm formation showed comparatively higher electrogenic activity.
机译:评估了光生物电催化燃料电池的电极表面化学对生物膜生长的影响。将一组光合细菌生长在分别设计为聚乙烯亚胺(PEI)和多壁碳纳米管作为亲水性和疏水性改性剂的不同电极上。设计的电极上装有0.08、0.17和0.33μg/ cm的PEI,以改变亲水性。但是,使用0.56、0.72和0.83 mg / cm的多壁碳纳米管可改变电极的疏水性。电极的表面化学性质和生物相互作用被评估为接触角和生物膜形成的函数。将结果与用碳纸电极获得的结果进行比较。在未经处理的电极(碳纸)上的接触角为118°,而对于疏水性和亲水性电极,最大和最小接触角分别为170°和0°。有趣的是,在高度疏水的表面上观察到最大的生物膜生长(0.2275 g,湿基);但是,最亲水的电极表面显示出最大的电化学性能(246 mV)。具有良好生物膜形成的基于PEI的电极显示出相对较高的成电活性。

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