4.8 Article

3D biofilm visualization and quantification on granular bioanodes with magnetic resonance imaging

期刊

WATER RESEARCH
卷 167, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.watres.2019.115059

关键词

Microbial fuel cells; Activated carbon granules; Porous electrodes; Magnetic resonance imaging; Biofilm distribution; Biofilm volume

资金

  1. Netherlands Organization for Scientific Research (NWO), Domain Applied and Engineering Science (TM) (VENI grant) [13631]
  2. Ministry of Economic Affairs
  3. Dutch Ministry of Economic Affairs
  4. Ministry of Infrastructure and Environment
  5. European Union Regional Development Fund
  6. Province of Fryslan
  7. Northern Netherlands Provinces
  8. NWO [022.005.029]
  9. 'Resource Recovery' of Wetsus

向作者/读者索取更多资源

The use of microbial fuel cells (MFCs) for wastewater treatment fits in a circular economy context, as they can produce electricity by the removal of organic matter in the wastewater. Activated carbon (AC) granules are an attractive electrode material for bioanodes in MFCs, as they are cheap and provide electroactive bacteria with a large surface area for attachment. The characterization of biofilm growth on AC granules, however, is challenging due to their high roughness and three-dimensional structure. In this research, we show that 3D magnetic resonance imaging (MRI) can be used to visualize biofilm distribution and determine its volume on irregular-shaped single AC granules in a non-destructive way, while being combined with electrochemical and biomass analyses. Ten AC granules with electroactive biofilm (i.e. granular bioanodes) were collected at different growth stages (3 to 21 days after microbial inoculation) from a multi-anode MFC and T-1-weighted 3D-MRI experiments were performed for three-dimensional biofilm visualization. With time, a more homogeneous biofilm distribution and an increased biofilm thickness could be observed in the 3D-MRI images. Biofilm volumes varied from 0.4 mu L (day 4) to 2 mu L (day 21) and were linearly correlated (R-2 = 0.9) to the total produced electric charge and total nitrogen content of the granular bioanodes, with values of 66.4 C mu L-1 and 17 mu g N mu L-1 , respectively. In future, in situ MRI measurements could be used to monitor biofilm growth and distribution on AC granules. (C) 2019 The Authors. Published by Elsevier Ltd.

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