Self-supporting nitrogen-doped reduced graphene oxide@carbon nanofiber hybrid membranes as high-performance integrated air cathodes in microbial fuel cells

石墨烯 微生物燃料电池 材料科学 纳米纤维 阴极 氧化物 碳纳米纤维 静电纺丝 化学工程 碳纤维 吸附 纳米技术 电极 碳纳米管 复合材料 阳极 化学 复合数 有机化学 聚合物 物理化学 工程类 冶金 生物化学
作者
Meng Xu,Ling Wu,Meiwen Zhu,Zhipeng Wang,Zheng‐Hong Huang,Mingxi Wang
出处
期刊:Carbon [Elsevier BV]
卷期号:193: 242-257 被引量:39
标识
DOI:10.1016/j.carbon.2022.03.024
摘要

The traditional air cathode in microbial fuel cell (MFC) usually consists of catalyst layer (CL), supporting layer (SL) and conductive gas diffusion layer (GDL), the overall MFC performance is inevitably affected by the additional and expensive adhesives and conductive agents. Here, we developed an integrated air cathode in MFC without any additional SL, GDL or adhesives. The integrated air cathode was self-supporting nitrogen-doped reduced graphene [email protected] nanofiber ([email protected]) hybrid membranes fabricated by electrospinning with subsequent heat-treatment under ammonia atmosphere. The as-fabricated [email protected] possessed far superior MFC performance and oxygen reduction reaction (ORR) activity to the pristine nitrogen-doped carbon nanofibers (NCNF) and commercial activated carbon (CAC). The amount of rGO embedded into CNF had prominent influence on their ORR activities and MFC performances. [email protected] had the lowest resistance and the maximal exchange current density, exhibiting desirable oxygen reduction performance via a four-electron pathway. The maximum power density of [email protected] can reach 826 mW m−2 in MFC, which is approximately 9, 2.53 and 1.82 times of pristine NCNF, CAC and Pt/C with values of 91, 327 and 454 mW m−2. The outstanding performance of the integrated air-cathodes originates from the integrality, brevity and hybrid composition of the electrospun nanofiber membrane. The appropriate embedded rGO not only improves the bulk conductivity of the [email protected] to promote ion adsorption, but also provides vacancies to accommodate ions, the doped nitrogen atoms facilitate O2 adsorption and/or subsequent O–O bond breaking, thus improving the electrochemical performance of [email protected] in MFC.
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