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

被引:34
|
作者
Xu, Meng [1 ]
Wu, Ling [2 ]
Zhu, Meiwen [3 ]
Wang, Zhipeng [4 ]
Huang, Zheng-Hong [5 ]
Wang, Ming-Xi [1 ]
机构
[1] Wuhan Inst Technol, Sch Chem & Environm Engn, Key Lab Biomass based Mat Environm & Energy Petr &, Wuhan 430205, Peoples R China
[2] Wuhan Univ Sci & Technol, Sch Chem & Chem Engn, Hubei Prov Key Lab Coal Convers & New Carbon Mat, Wuhan 430081, Peoples R China
[3] Chongqing Acad Metrol & Qual Inspection, Chongqing 401123, Peoples R China
[4] Jiangxi Normal Univ, Inst Adv Mat, 99 Ziyang Ave, Nanchang 330022, Peoples R China
[5] Tsinghua Univ, Sch Mat Sci & Engn, Lab Adv Mat, Beijing 100084, Peoples R China
基金
中国国家自然科学基金;
关键词
Reduced graphene oxide; Carbon nano fiber; Integrated air cathode; Oxygen reduction reaction; Microbial fuel cell; OXYGEN-REDUCTION REACTION; METAL-FREE ELECTROCATALYST; WASTE-WATER TREATMENT; POWER-GENERATION; ACTIVATED CARBON; CATALYST; SUPERCAPACITOR; COMPOSITES; SPECTROSCOPY; AEROGEL;
D O I
10.1016/j.carbon.2022.03.024
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
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 selfsupporting nitrogen-doped reduced graphene oxide@carbon nanofiber (N-rGO@CNF) hybrid membranes fabricated by electrospinning with subsequent heat-treatment under ammonia atmosphere. The as-fabricated N-rGO@CNFs 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. N-5-rGO@CNF 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 N-5-rGO@CNF 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 rGO@CNF 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 N-rGO@CNF in MFC.
引用
收藏
页码:242 / 257
页数:16
相关论文
共 50 条
  • [1] High-Performance Carbon Aerogel Air Cathodes for Microbial Fuel Cells
    Zhang, Xiaoyuan
    He, Weihua
    Zhang, Rufan
    Wang, Qiuying
    Liang, Peng
    Huang, Xia
    Logan, Bruce E.
    Fellinger, Tim-Patrick
    CHEMSUSCHEM, 2016, 9 (19) : 2788 - 2795
  • [2] Synthesis of nitrogen-doped reduced graphene oxide directly from nitrogen-doped graphene oxide as a high-performance lithium ion battery anode
    Du, Meng
    Sun, Jing
    Chang, Jie
    Yang, Fan
    Shi, Liangjing
    Gao, Lian
    RSC ADVANCES, 2014, 4 (80) : 42412 - 42417
  • [3] Waste paper derived three-dimensional carbon aerogel integrated with ceria/nitrogen-doped reduced graphene oxide as freestanding anode for high performance and durable microbial fuel cells
    Senthilkumar, Nangan
    Aziz, Md. Abdul
    Pannipara, Mehboobali
    Alphonsa, A. Therasa
    Al-Sehemi, Abdullah G.
    Balasubramani, A.
    Gnana Kumar, G.
    BIOPROCESS AND BIOSYSTEMS ENGINEERING, 2020, 43 (01) : 97 - 109
  • [4] Self-supporting activated carbon/carbon nanotube/reduced graphene oxide flexible electrode for high performance supercapacitor
    Li, Xing
    Tang, Yao
    Song, Junhua
    Yang, Wei
    Wang, Mingshan
    Zhu, Chengzhou
    Zhao, Wengao
    Zheng, Jianming
    Lin, Yuehe
    CARBON, 2018, 129 : 236 - 244
  • [5] Bimetallic metal-organic frameworks derived cobalt nanoparticles embedded in nitrogen-doped carbon nanotube nanopolyhedra as advanced electrocatalyst for high-performance of activated carbon air-cathode microbial fuel cell
    Zhang, Song
    Su, Wei
    Wang, Xiaojing
    Li, Kexun
    Li, Yong
    BIOSENSORS & BIOELECTRONICS, 2019, 127 : 181 - 187
  • [6] Carbon-Encapsulated Iron Oxide Nanoparticles in Self-Supporting Carbon Nanofiber for High-Performance Supercapacitor in Acid Electrolyte with Superior Stability
    Shi, Wei
    Hu, Bin
    Zhang, Hexuan
    Li, Jingjing
    Yang, Jianmao
    Liu, Jianyun
    ACS APPLIED ENERGY MATERIALS, 2020, 3 (12): : 12652 - 12661
  • [7] Nitrogen-doped carbon nanotubes/reduced graphene oxide nanosheet hybrids towards enhanced cathodic oxygen reduction and power generation of microbial fuel cells
    Du, Yue
    Ma, Fei-Xiang
    Xu, Cheng-Yan
    Yu, Jing
    Li, Da
    Feng, Yujie
    Zhen, Liang
    NANO ENERGY, 2019, 61 : 533 - 539
  • [8] Synthesis of nitrogen-doped reduced graphene oxide-multiwalled carbon nanotube composite on nickel foam as electrode for high-performance supercapacitor
    Ban, Fook Yun
    Jayabal, Subramaniam
    Lim, Hong Ngee
    Lee, Hing Wah
    Huang, Nay Ming
    CERAMICS INTERNATIONAL, 2017, 43 (01) : 20 - 27
  • [9] The excellent performance of nitrogen-doped porous carbon nanowires modified activated carbon as air cathode catalyst for microbial fuel cells
    Rui Yang
    Kexun Li
    Cuicui Lv
    Benqiang Cen
    Lei Wang
    Bolong Liang
    Journal of Solid State Electrochemistry, 2019, 23 : 3437 - 3447
  • [10] The excellent performance of nitrogen-doped porous carbon nanowires modified activated carbon as air cathode catalyst for microbial fuel cells
    Yang, Rui
    Li, Kexun
    Lv, Cuicui
    Cen, Benqiang
    Wang, Lei
    Liang, Bolong
    JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2019, 23 (12) : 3437 - 3447