Effect of Temperature on the Catalytic Ability of Electrochemically Active Biofilm as Anode Catalyst in Microbial Fuel Cells

被引:42
作者
Liu, Ying [1 ]
Climent, Victor [1 ]
Berna, Antonio [1 ]
Miguel Feliu, Juan [1 ]
机构
[1] Univ Alicante, Inst Electroquim, E-03080 Alicante, Spain
关键词
Microbial fuel cell; Temperature; Electrochemically active biofilm; Anodic catalyst; Mixed-culture; EXTRACELLULAR ELECTRON-TRANSFER; SHEWANELLA-ONEIDENSIS DSP10; HEAT-TREATED SOIL; ELECTRICITY-GENERATION; GEOBACTER-SULFURREDUCENS; POWER-GENERATION; BACTERIAL COMMUNITIES; MFC PERFORMANCE; BIOFUEL CELLS; ENERGY;
D O I
10.1002/elan.201000499
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In this study we report the effect of temperature on the catalytic ability of an electrochemically active biofilm based on mixed-culture to oxidize acetate and found the optimum temperature showing maximal catalytic activity and power output. Electrochemical characterization of biofilm and power output and internal resistance of microbial fuel cell (MFC) have been investigated at different temperatures. When temperature increased from 30 to 45 degrees C the catalytic ability of biofilms to oxidize acetate increased following the Arrhenius law with apparent activation energy of 44.85 kJ/mol. At temperatures higher than 48 degrees C, however, the bioelectrocatalytic current decreased. At 53 degrees C the bacterial metabolism was in inactivation. The optimum working temperature of the biofilm was 45 degrees C, producing current of 1339 mu A cm(-2). This current was almost three times higher than 527 mu A cm(-2) at 30 degrees C. The MFC performance at different temperatures showed consistent temperature dependence to that of a semi-batch cell, which implies that anode catalytic ability in MFC is the main limit factor for increasing power output. A maximum power output of 1065 mW m(-2) was also observed at 45 degrees C and it was 1.5 times higher than 764 mW m(-2) at 30 degrees C. The increased MFC performance from 30 degrees C to 45 degrees C is lower in comparison with about three times higher increase in semi-batch cells. This could be due to other factors such as proton migration rate in membrane of MFC, which can be seen from that the internal resistance value of 121.5 Omega in the MFC at 45 degrees C was only slightly lower than 177.6 Omega at 30 degrees C. Also, some other factors such as cell configuration which would limit the power output and can be further optimized. This work contributes to the study of influence from temperature on anodic electrochemically active biofilm activity and their subsequent influence on MFC performance and reports the optimal temperature for biofilm activity based on mixed-culture.
引用
收藏
页码:387 / 394
页数:8
相关论文
共 50 条
  • [21] Modelling and Analysis of Microbial Fuel Cells with a Two-species Anode Biofilm
    Yang, Ziming
    Yang, Aidong
    [J]. 30TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, PTS A-C, 2020, 48 : 1591 - 1596
  • [22] Enhanced performance of microbial fuel cells using electrochemically treated carbon felt anode
    Poureshghi, Fatemeh
    Calay, Rajnish Kaur
    Das, Subhashis
    [J]. RESULTS IN CHEMISTRY, 2023, 6
  • [23] Anode biofilm communities and the performance of microbial fuel cells with different reactor configurations
    Jiang, Qingqing
    Xing, Defeng
    Sun, Rui
    Zhang, Lu
    Feng, Yujie
    Ren, Nanqi
    [J]. RSC ADVANCES, 2016, 6 (88) : 85149 - 85155
  • [24] Effect of pH on the performance of the anode in microbial fuel cells
    Zhang, Enren
    Liu, Lei
    Cui, Yingying
    [J]. PROGRESS IN RENEWABLE AND SUSTAINABLE ENERGY, PTS 1 AND 2, 2013, 608-609 : 884 - 888
  • [25] Evaluation of catalytic properties of tungsten carbide for the anode of microbial fuel cells
    Rosenbaum, Miriam
    Zhao, Feng
    Quaas, Marion
    Wulff, Harm
    Schroeder, Uwe
    Scholz, Fritz
    [J]. APPLIED CATALYSIS B-ENVIRONMENTAL, 2007, 74 (3-4) : 261 - 269
  • [26] Effect of Temperature Variation on the Performance of Microbial Fuel Cells
    Song, Youngil
    An, Junyeong
    Chae, Kyu-Jung
    [J]. ENERGY TECHNOLOGY, 2017, 5 (12) : 2163 - 2167
  • [27] Electroactive biofilm communities in microbial fuel cells for the synergistic treatment of wastewater and bioelectricity generation
    Mahto, Kumari Uma
    Das, Surajit
    [J]. CRITICAL REVIEWS IN BIOTECHNOLOGY, 2025, 45 (02) : 434 - 453
  • [28] Carbon Nanotubes Conjugated Mesoporous Tungsten Trioxide as Anode Electrocatalyst for Microbial Fuel Cells
    Wang, Yaqiong
    Li, Bin
    Xiang, Xingde
    Guo, Chunlei
    Li, Weishan
    [J]. ECS JOURNAL OF SOLID STATE SCIENCE AND TECHNOLOGY, 2020, 9 (11)
  • [29] Electrochemically active bacteria (EAB) and mediator-less microbial fuel cells
    Chang, IS
    Moon, H
    Bretschger, O
    Jang, JK
    Park, HI
    Nealson, KH
    Kim, BH
    [J]. JOURNAL OF MICROBIOLOGY AND BIOTECHNOLOGY, 2006, 16 (02) : 163 - 177
  • [30] Synergistic effect between poly(diallyldimethylammonium chloride) and reduced graphene oxide for high electrochemically active biofilm in microbial fuel cell
    Chen, Xuepeng
    Li, Yunfei
    Yuan, Xiaole
    Li, Nan
    He, Weihua
    Liu, Jia
    [J]. ELECTROCHIMICA ACTA, 2020, 359