阳极
镍
材料科学
钴
电化学
复合数
氧化钴
电化学储能
储能
冶金
氧化镍
氧化物
超级电容器
电极
复合材料
化学
功率(物理)
物理化学
物理
量子力学
作者
Yuyang Wang,Xiangquan Kong,Zhijie Wang,Dongming Zhang,Yu Song,Su Ma,Ying Duan,Andrii Vyshnikin,Vitalii A. Palchykov,Jinlong Zuo
出处
期刊:Coatings
[Multidisciplinary Digital Publishing Institute]
日期:2025-03-22
卷期号:15 (4): 373-373
标识
DOI:10.3390/coatings15040373
摘要
Microbial fuel cells (MFCs) are a novel bioenergy technology that utilizes microorganisms to catalyze the conversion of fuels into electricity. However, traditional MFCs are constrained by the low electricity generation capacity of microorganisms, resulting in relatively low power output. Additionally, the inability of traditional MFCs to store electricity significantly limits their practical applications. In this study, we fabricate a novel oxide graphite/nickel cobalt oxide (GO/NiCo2O4) capacitive composite bioanode material supported on stainless-steel fiber felt (SSFF). This composite material combines the excellent biocompatibility of graphite oxide and the energy storage capacity of nickel cobalt oxide. Consequently, the prepared anode exhibits significant advantages, including high specific capacitance, efficient electron transport, and enhanced biocompatibility. The MFC with the SSFF/GO/NiCo2O4 anode demonstrated a significantly enhanced power density, achieving a maximum of 1267.5 mW/m2—1.38-fold and 2.23-fold higher than those of the SSFF/GO and SSFF anodes, respectively. Moreover, the modified anode (SSFF/GO/NiCo2O4) exhibited a stored charge (Qs) of 1405.35 C/m2, representing 2.61-fold and 35.79-fold increases compared to the SSFF/GO and SSFF anodes, respectively. High-throughput analysis revealed that SSFF/GO/NiCo2O4-modified anode achieved an electrogenic bacterial efficiency exceeding 81%, which was significantly higher than that of the SSFF/GO and SSFF anodes. The results of this study not only provide valuable insights and theoretical guidance for the development of MFCs using capacitive composite anode materials, they also present sustainable power solutions for low-power electronic systems, such as miniaturized sensors and IoT devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI