Gaseous toluene powered microbial fuel cell: Performance, microbial community, and electron transfer pathway

被引:86
|
作者
Zhang, Shihan [1 ]
You, Juping [1 ]
An, Ni [1 ]
Zhao, Jingkai [2 ]
Wang, Lidong [3 ]
Cheng, Zhuowei [1 ]
Ye, Jiexu [1 ]
Chen, Dongzhi [1 ]
Chen, Jianmeng [1 ]
机构
[1] Zhejiang Univ Technol, Coll Environm, Key Lab Microbial Technol Ind Pollut Control Zhej, Hangzhou 310014, Zhejiang, Peoples R China
[2] Zhejiang Univ, Key Lab Biomass Chem Engn, Minist Educ, Yuquan Campus, Hangzhou 310027, Zhejiang, Peoples R China
[3] North China Elect Power Univ, Dept Environm Sci & Engn, Baoding 071003, Peoples R China
基金
中国国家自然科学基金;
关键词
MFC; Gaseous toluene; Microbial community; Electron transfer pathway; BIOTRICKLING FILTER; ELECTRICITY-GENERATION; DEGRADATION; ACETATE; REMOVAL; AIR; OXIDATION; PHENOL; STRAIN; CARBON;
D O I
10.1016/j.cej.2018.06.027
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A microbial fuel cell (MFC) was used to evaluate its performance of the gaseous toluene removal in this work. The experimental results revealed that the MFC exhibited a removal efficiency as high as 88% with a toluene concentration of 300 mg m(-3). Moreover, the closed-circuit MFC exhibited 1.4-3.5 times higher toluene removal efficiency compared with the open-circuit MFC, indicating that the interaction between the electrodes and microorganisms accelerates the electron transfer rate and thus enhances the microbial degradation rate. The microbial community analysis indicated that, in the toluene-powered MFC, the growth of the exoelectrogens such as Arcobacter and Geobacter were inhibited and the toluene degraders such as Chryseobacterium and Zoogloea prevailed in the MFC. For example, Arcobacter was almost disappeared and Geobacter was decreased by 40% as the fuel in the MFC switched from the acetate to toluene. Moreover, compared with Chryseobacterium, Zoogloea exhibited a high activity in the toluene removal as evidenced by the relationship between microbial community and its performance. Furthermore, the cyclic voltammetry analysis showed that an oxidation peak at -0.31 V vs Ag/AgCl and an apparent redox-area at -0.1 to + 0.2 V vs Ag/AgCl was observed compared to the abiotic control, which are typical to the menaquinone and the outer membrane cytochromes (OMC) such as OmcZ, OmcS, a-type, and d-type. Therefore, a direct electron transfer pathway involving the menaquinone and OMC were proposed in the toluene-powered MFC. This work will provide some insight into development of gaseous VOCs-powered MFC and a novel technology for the VOCs removal.
引用
下载
收藏
页码:515 / 522
页数:8
相关论文
共 50 条
  • [41] Sludge Derived Carbon Modified Anode in Microbial Fuel Cell for Performance Improvement and Microbial Community Dynamics
    Zhu, Kaili
    Xu, Yihu
    Yang, Xiao
    Fu, Wencai
    Dang, Wenhao
    Yuan, Jinxia
    Wang, Zhiwei
    MEMBRANES, 2022, 12 (02)
  • [42] Tetracycline inhibition and transformation in microbial fuel cell systems: Performance, transformation intermediates, and microbial community structure
    Long, Sha
    Zhao, Lin
    Chen, Jinchen
    Kim, Juhee
    Huang, Ching-Hua
    Pavlostathis, Spyros G.
    BIORESOURCE TECHNOLOGY, 2021, 322 (322)
  • [43] Performance of sodium bromate as cathodic electron acceptor in microbial fuel cell
    Dai, Hongyan
    Yang, Huimin
    Liu, Xian
    Zhao, Yu
    Liang, Zhenhai
    BIORESOURCE TECHNOLOGY, 2016, 202 : 220 - 225
  • [44] Electron transfer mechanisms, new applications, and performance of biocathode microbial fuel cells
    Huang, Liping
    Regan, John M.
    Quan, Xie
    BIORESOURCE TECHNOLOGY, 2011, 102 (01) : 316 - 323
  • [45] Promotion of anodic electron transfer in a microbial fuel cell combined with a silicon solar cell
    Ding, Hongrui
    Li, Yan
    Lu, Anhuai
    Wang, Xin
    Wang, Changqiu
    JOURNAL OF POWER SOURCES, 2014, 253 : 177 - 180
  • [46] Regulated surface potential impacts bioelectrogenic activity, interfacial electron transfer and microbial dynamics in microbial fuel cell
    Modestra, J. Annie
    Reddy, C. Nagendranatha
    Krishna, K. Vamshi
    Min, Booki
    Mohan, S. Venkata
    RENEWABLE ENERGY, 2020, 149 : 424 - 434
  • [47] Correction to: Potential of Industrial waste to transfer Microbial electron in Microbial Fuel Cell using dye reduction assay
    Ann Maxton
    Sam A. Masih
    Water, Air, & Soil Pollution, 2025, 236 (3)
  • [48] Direct electron transfer with yeast cells and construction of a mediatorless microbial fuel cell
    Prasad, D.
    Arun, S.
    Murugesan, A.
    Padmanaban, S.
    Satyanarayanan, R. S.
    Berchmans, Sheela
    Yegnaraman, V.
    BIOSENSORS & BIOELECTRONICS, 2007, 22 (11): : 2604 - 2610
  • [49] Role of microbial community and plant species in performance of plant microbial fuel cells
    Rusyn, Iryna
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 152
  • [50] Solar Energy Powered Microbial Fuel Cell with a Reversible Bioelectrode
    Strik, David P. B. T. B.
    Hamelers, Hubertus V. M.
    Buisman, Cees J. N.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (01) : 532 - 537