The enhancement of microbial fuel cell performance by anodic bacterial community adaptation and cathodic mixed nickel-copper oxides on a graphene electrocatalyst.

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Dena Z Khater, R S Amin, M O Zhran, Zeinab K Abd El-Aziz, Mohamed Mahmoud, Helmy M Hassan, K M El-Khatib
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引用次数: 10

Abstract

Background: Although microbial fuel cells (MFCs) represent a promising technology for capturing renewable energy from wastewater, their scaling-up is significantly limited by a slow-rate cathodic oxygen reduction reaction (ORR) and the development of a resilient anodic microbial community. In this study, mixed transition metal oxides of nickel and copper (Ni and Cu), supported on a graphene (G) (NiO-CuO/G) electrocatalyst, were synthesized and tested as a cost-effective cathode for ORR in MFCs. Electrochemical measurements of electrocatalyst were conducted using a rotating disk electrode (RDE) and linear sweep voltammetry (LSV) in a neutral electrolyte, and compared with a benchmark Pt/C catalyst. Furthermore, the long-term performance of the as-synthesized electrocatalyst was evaluated in a single-chamber MFC by measuring organic matter removal and polarization behavior. The successful enrichment of electroactive biofilm was also monitored using transmission electron microscopy and the Vitek2 compact system technique.

Results: When compared with the benchmark platinum cathode, the NiO-CuO/G electrocatalyst exhibited high selectivity toward ORR. The rotating disk electrode (RDE) experiments reveal that ORR proceeds via a 4-electron ORR mechanism. Furthermore, the NiO-CuO/G electrocatalyst also exhibited a high power density of 21.25 mW m-2 in an air-cathode MFC, which was slightly lower than that of Pt/C-based MFC (i.e., 50.4 mW m-2). Biochemical characterization of the most abundant bacteria on anodic biofilms identified four genera (i.e., Escherichia coli, Shewanella putrefaciens, Bacillus cereus, and Bacillus Thuringiensis/mycoides) that belonged to Gammaproteobacteria, and Firmicutesphyla.

Conclusions: This study demonstrates that the NiO-CuO/G cathode had an enhanced electrocatalytic activity toward ORR in a pH-neutral solution. This novel mixed transition metal oxide electrocatalyst could replace expensive Pt-based catalysts for MFC applications.

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石墨烯电催化剂上阳极细菌群落适应性和阴极混合镍铜氧化物对微生物燃料电池性能的增强。
背景:尽管微生物燃料电池(mfc)代表了一种从废水中捕获可再生能源的有前途的技术,但其规模的扩大受到缓慢的阴极氧还原反应(ORR)和弹性阳极微生物群落的发展的显著限制。在这项研究中,合成了镍和铜的混合过渡金属氧化物(Ni和Cu),并在石墨烯(G) (NiO-CuO/G)电催化剂上负载,作为mfc中ORR的经济高效阴极进行了测试。采用旋转圆盘电极(RDE)和线性扫描伏安法(LSV)在中性电解质中对电催化剂进行了电化学测量,并与基准Pt/C催化剂进行了比较。此外,通过测量有机物质去除和极化行为,在单室MFC中评估了合成电催化剂的长期性能。利用透射电镜和Vitek2紧凑系统技术对电活性生物膜的成功富集进行了监测。结果:与基准铂阴极相比,NiO-CuO/G电催化剂对ORR具有较高的选择性。旋转圆盘电极(RDE)实验表明,ORR是通过四电子ORR机制进行的。此外,NiO-CuO/G电催化剂在空气阴极MFC中也表现出21.25 mW m-2的高功率密度,略低于Pt/ c基MFC的50.4 mW m-2。对阳极生物膜上最丰富的细菌进行生化表征,鉴定出4属(即大肠杆菌、腐坏希瓦氏菌、蜡样芽孢杆菌和苏云金芽孢杆菌/真菌),分别属于γ变形菌门和厚壁菌门。结论:本研究表明,NiO-CuO/G阴极在ph中性溶液中对ORR具有增强的电催化活性。这种新型混合过渡金属氧化物电催化剂可取代昂贵的pt基催化剂用于MFC。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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